Search Results for: ivan ebel

Ivan Ebel

Swiss visual artist Ivan Ebel looks like he’s been dabbling with the anatomical designs of the human body.

Ivan Ebel

Ivan Ebel

Ivan Ebel

His paintings and illustrations reflect the representation of the body and the symbolic notation of the body.

 

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L’envers du Corps

L'envers du corps II by Ivan Ebel

L'envers du corps I by Ivan Ebel

Knock out by Ivan Ebel

There’s something so beautiful and intriguing about these paintings by Ivan Ebel.  They remind me of those clinical anatomy textbook diagrams, but so much more warm and human.  I can just envision the middle painting above covering a giant empty wall in the foyer of a hospital or modern doctor’s office.  Love it.

[via Sang Bleu]

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Best Bill Farmer Films, Series and Shorts on Disney+ – What’s On Disney Plus

Disney takes time to honor those who have contributed to the companys success by recognizing them as Disney Legends. One of the Disney Legends is Bill Farmer who worked in animation. He is best known as the voice of Goofy and Pluto but has also provided countless other voices over the years. Lets take a look at some of the best films, series or shorts on Disney+ featuring Bill Farmer.

A toon-hating detective is a cartoon rabbits only hope to prove his innocence when he is accused of murder.

A prince cursed to spend his days as a hideous monster sets out to regain his humanity by earning a young womans love.

When Max makes a preposterous promise to a girl he has a crush on, his chances to fulfilling it seem hopeless when he is dragged onto a cross-country trip with his embarrassing father, Goofy.

A cowboy doll is profoundly threatened and jealous when a new spaceman action figure supplants him as top toy in a boys bedroom.

A deformed bell-ringer must assert his independence from a vicious government minister in order to help his friend, a gypsy dancer.

The son of Zeus and Hera is stripped of his immortality as an infant and must become a true hero in order to reclaim it.

A misfit ant, looking for warriors to save his colony from greedy grasshoppers, recruits a group of bugs that turn out to be an inept circus troupe.

When Woody is stolen by a toy collector, Buzz and his friends set out on a rescue mission to save Woody before he becomes a museum toy property with his roundup gang Jessie, Prospector, and Bullseye.

Max goes to college, but to his embarrassment his father loses his job and goes to his sons campus.

In order to power the city, monsters have to scare children so that they scream. However, the children are toxic to the monsters, and after a child gets through, two monsters realize things may not be what they think.

When a young Inuit hunter needlessly kills a bear, he is magically changed into a bear himself as punishment with a talkative cub being his only guide to changing back.

To save their farm, the resident animals go bounty hunting for a notorious outlaw.

Manny, Sid and Diego discover that the ice age is coming to an end, and join everybody for a journey to higher ground. On the trip, they discover that Manny is not in fact the last of the woolly mammoths.

On the way to the biggest race of his life, a hotshot rookie race car gets stranded in a rundown town, and learns that winning isnt everything in life.

A look at the relationship between Mike Wazowski (Billy Crystal) and James P. Sully Sullivan (John Goodman) during their days at Monsters University, when they werent necessarily the best of friends.

The famed stepbrother inventors know what theyre gonna do today. Theyre gonna rescue their sister from an alien abduction.

A poor boy and a prince exchange identities and lives while the villainous Captain of the Guard plots to take advantage of this.

Three tales of Christmas past about Donalds nephews reliving the day on repeat, Max Goofs belief in Santa being challenged, and Mickey and Minnie making ends meet.

Jaq and Gus create a storybook based on three events that happened after the first film. The stories include Cinderellas opposition to the courts strict etiquette, Jaqs becoming human for a day, and Anastasias redemption through love.

Timon the meerkat and Pumbaa the warthog are best pals and the unsung heroes of the African savanna. This prequel to the smash Disney animated adventure takes you back way back before Simbas adventure began. Youll find out all about Timon and Pumbaa and tag along as they search for the perfect home and attempt to raise a rambunctious lion cub.

Mickey, Donald and Goofy are the French three Musketeers.

Mickey and all his Disney pals star in an original movie about the importance of opening your heart to the true spirit of Christmas. Stubborn old Donald tries in vain to resist the joys of the season, and Mickey and Pluto learn a great lesson about the power of friendship.

The classic Disney character Goofy is a single father raising his son, Max, in Spoonerville. Pete, a frequent antagonist from the old cartoons, lives next door with his family.

The misadventures of Donald Duck and his rebellious teenage nephews with attitude, Huey, Dewey, and Louie.

Mickey and his friends Minnie, Donald, Pluto, Daisy, Goofy, Pete, Clarabelle and more go on fun and educational adventures.

Higglytown is full of everyday heroes like Mail Carrier Hero (Kathie Lee Gifford), Fireman Hero (Donald Faison), and Bus Driver Hero (Stuart Pankin). This inventive series taught children about their ever-growing environment in an entertaining way.

Minnie and daisy open a bow shop in which they help people and have adventures.

Mickey Mouse takes on new adventures finding himself in silly situations in different settings.

An animated TV show that follows a band of young pirates who spend their days competing against Captain Hook and Mr. Smee for treasure.

Donald Duck decides to forgo flying south for the winter in order to spend Christmas with Mickey Mouse and his other pals.

At the end of Halloween night, Mickey attempts to cap off the evening by telling his and Donalds nephews the scariest story ever.

Ordinary Anne Boonchuy, 13, finds a music box that sends her to Amphibia, a world full of frogs, toads, and giant insects. With help from Sprig, she must adjust to life in Amphibia and discover the first true friendship in her life.

Vampirina tells the story of a young vampire girl who faces the joys and trials of being the new kid in town when her family moves from Transylvania to Pennsylvania.

The comedy-adventure series chronicles the high-flying adventures of trillionaire Scrooge McDuck; his temperamental nephew Donald Duck; grandnephews Huey, Dewey, and Louie; Launchpad McQuack; and Mrs. Beakley and her granddaughter Webby.

Mickey and his best pals Minnie, Donald, Daisy, Goofy and Pluto embark on their greatest adventures yet, navigating the curve-balls of a wild and zany world where the magic of Disney makes the impossible possible.

Follows Funny, an enchanted talking playhouse who leads Mickey Mouse and his pals on imaginative adventures.

The lovable chipmunk troublemakers in a non-verbal, classic style comedy, following the ups and downs of two little creatures living life in the big city.

Goofy shows us how to get through this pandemic as only he can.

The series centers on the adventures of Chibi versions of Disney characters as they live in their own universe.

Bill Farmer, the voice actor of Goofy and Pluto, tells the stories of working dogs across the United States while educating viewers on responsible pet care.

Those are some of the amazing movies, series and specials featuring the wonderfully talented Bill Farmer. What will you be watching?

Jeremy has been a big Disney fan since he was a kid growing up during the Disney Renaissance. One day he hopes to go to every Disney Park in the world.

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Best Bill Farmer Films, Series and Shorts on Disney+ - What's On Disney Plus

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Construction of a Ferroptosis-Related Gene Signature for Predicting Su | IJGM – Dove Medical Press

Introduction

There are over 200,000 new cases diagnosed per year worldwide with skin cutaneous melanoma (SKCM), which is a very aggressive disease.1 Patients who have lived 5 years since the time of diagnosis of advanced melanoma have a 5-year over survival (OS) average of 1029%, and the total success rate of their form of chemotherapy is less than 20%.1,2 Though great efforts have been devoted to the management of advanced and metastatic SKCM, the treatment and management of it is far less effective.3 Ultraviolet radiation and hereditary predetermination are the major melanoma risk factors.4 Early detection and management of melanoma contribute to improved results as well as new treatments for even more severe stages of the disease. Mortality from melanoma has actually been remaining constant, with relatively little improvement over time, which emphasizes the significance of continuing studies on the molecular mechanisms of melanoma production and clinical goals.5

In the human body, iron is a necessary micronutrient for certain biological processes, for example, cell metabolism, cellular development, and proliferation.6 Iron homeostasis is precisely controlled by iron ingestion, systemic transport, and preservation inside the body.7 In tumor cells, alterations in iron metabolism may cause two-side impact: on the heme synthesis and sequestration, leading to the accumulation of free iron and depletion of hemoglobin.8 Although the majority of tumor cells have an elevated iron requirement, an adequate level in the body can encourage tumor growth and proliferation, iron accumulation above that range may trigger cell death, or cell death may result in membrane lipid peroxidation.9 Ferroptosis may be of use in the management of some cancers. Ferroptosis has gained popularity as a potential cancer cure after the first presentation in 2012.10 A number of experiments have concluded that ferroptosis plays a crucial function in cell death and in tumor inhibition.11 Additional studies have shown the importance of ferroptosis in diagnosis and prognosis,12 but During the formation and progression of the disease, key regulators and pathways of ferroptosis are still unclear.

The term tumor microenvironment refers to the immune cells that exist inside a tumor. TIME regulates iron synthesis and homeostasis in the body. Iron homeostasis is often maintained by Th1 cells, macrophages, etc. Further, it was discovered that immunoregulation and ferroptosis worked in concert in TIME.13 The activation of cytotoxicity in tumor cells reveals tumor antigens, enhancing the microenvironments immunogenicity and hence the treatments effectiveness and a separate research study discovered that activating CD8 T-cells can boost lipid peroxidation activity in the TIME against tumors, and the increased lipid peroxidation of the tumor cells aids the therapeutic action of immunotherapy.14,15

While there are a variety of SKCM signatures, ferroptosis studies are yet to be proven. Ferroptosis models, for the first time, are built from detailed gene expression, but representing the actual physiological status were developed for use in the SKCM population to predict the microenvironment of the patient in the patient cohort. It is possible that this approach may help with making treatment choices in the future.

A total of 460 SKCM RNA-seq data and accompanying clinical details were downloaded from TCGA database. RNA-seq data and SKCM clinical details for another 213 samples were extracted from Gene Expression Omnibus (GSE65904) database. TCGA and GEO data are freely accessible. Thus, the present study was excluded from ethics committees of the respective jurisdiction. The present study adheres to the TCGA and GEO guidelines.

For differentially expressed ferroptosis-related genes, a protein-protein interaction (PPI) network was discovered using the STRING database. For exploring the molecular interactions, the Cytoscape bioinformatics tool was used.

The search for ferroptosis-related genes of prognostic significance as part of the univariate Cox analysis of OS. By minimizing the chance of overfitting, LASSO method was used to build a predictive signature. The R package glmnet was performed for variable chosen and shrinkage. After that, multivariate regression was used to define the model with the lowest criterion score, that is goodness of fit metric.16 Afterward, the ferroptosis gene signature risk score was divided in conjunction with linear combination of the risk factor and the expression equation (). Risk score = 1 * gene1expression + 2 * gene2expression + 3 * gene3expression + + n * gene expression. Using the risk score algorithm, For each patient, a risk score was determined. To divide the patients into high-risk and low-risk categories, we used the median risk score level as a cutoff value. In this analysis, the KaplanMeier method was conducted to test the significance of variations in survival time between the high-risk and low-risk classes. The ROC curve (including 1-, 3-, and 5-year survival) was created to represent the ferroptosis-based signature using survivalROC R package to show sensitivity and specificity.

We used survival R package to complete the univariate and multivariate studies on gene signature related to ferroptosis and clinicopathologic characteristics in TCGA and GSE65904. Further, various properties were tested to determine whether the gene signature related to ferroptosis was correlated with clinicopathological factors.

In order to provide a quantitative method for predicting the survival risk for SKCM patients, the nomogram was developed by R package rms using a ferroptosis signature as well as quantitative data. In the meanwhile, calibration curves were drawn to provide an accurate estimate of predictive and test the accuracy of nomograms.

According to their calculated risk values, the SKCM samples were split into two groups (high and low risk groups). We used GSEA to differentiate between the two groups in order to discover and study the essential mechanism for KEGG pathways.17 The reference gene collection was c2.cp.kegg.v6.2.symbols.gmt, which was annotated.

In both datasets, CIBERSORT was used to measure the proportion of tumor infiltrating immune cells. Via the linear support vector principle, CIBERSORT is really effective at analyzing expression matrices of immune cell types.18 The association between 22 different types of tumor-infiltrating immune cells was investigated. An integrated study of Spearman coefficient and Wilcoxon-rank sum was performed to determine the relationship between the 22 tumor infiltrating immune cells.19 We evaluated the association between the risk score and the levels of expression levels of CTLA4, PD-1, and PD-L1, the three main immune checkpoint genes.

KaplanMeier study was performed using R packages survival and survminer. The survival package was used to analyze the Cox study. For ROC study, the R package survivalROC was used. Statistical significance is shown by a p-value < 0.05.

A total of 460 melanoma samples were obtained from the TCGA database. There were 213 individual samples from the validation dataset. Table S1 includes all the basic demographic information. Figure 1 represents the design of the present analysis.

Figure 1 Flowchart of this studys analysis protocol.

This research includes a total of 60 ferroptosis-related genes (Table S2). A PPI network was built to elucidate the interrelationships among these genes (Figure S1). We developed KaplanMeier curves from the TCGA database of ferroptosis-related genes to study OS. 10 genes were strongly related to patient outcome in the Log rank test (p < 0.05) among the 60 genes (Figure 2A). For the purpose of building a ferroptosis-related model, LASSO was applied to select the best optimal model (Figure 2B and C). 8 genes were found with the LASSO algorithms. Finally, a risk model was generated using a multivariate Cox regression analysis. The genes ALOX5 and CHAC1 have been found to be highly predictive (Figure 2D). After calculated the expression equation () The following equation is used to calculate the signatures risk value: risk score = (0.3258) x expression (ALOX5) + (0.1597) x expression (CHAC1). Among them, it was concluded that a protective effect was demonstrated for ALOX5 had coefficient <0 associated with long OS (Figure S2A). CHAC1 was associated with short OS and coefficient > 0 and considered as a high-risk factor (Figure S2B). Each patient in the TCGA and GEO cohorts was given a risk score, and they were divided into low and high risk categories.

Figure 2 The TCGA cohort was used to identify potential ferroptosis-related genes. (A) Univariate Cox regression study identifies prognostic factors. (B) LASSO coefficient distributions for the 10 ferroptosis-related possible prognostic genes. (C) Plots of the produced coefficient distributions for the logarithmic (lambda) series for parameter selection (lambda). (D) Multivariate Cox study was used to construct a ferroptosis-related gene signature in the TCGA cohort.

The risk scores were measured and the patients were divided into high- and low-risk categories based on the median level. (Figure 3A). In both TCGA and GSE65904, expression of ALOX5 was increased in conjunction with low risk, seen in heatmap (Figure 3B). The expression of CHAC1 was increased in conjunction with high risk in bot datasets. Patients in the TCGA population get a weaker OS as their risk level rises (Figure 3C). The mortality rate was also greater in the high-risk group, according to our findings (Figure 3D and E). Furthermore, for the prognostic classification of risk score, a ROC study was conducted. We looked at the prognosis prediction classification efficiency at 1, 3, and 5 years. For the survival rates of 1, 3, and 5 years in TCGA cohort, the prognostic signature had AUC values of 0.651, 0.638, and 0.622, respectively. At 1, 3, and 5 years, the AUC values in GEO dataset were 0.560, 0.636, and 0.557 (Figure 3F). Furthermore, for the prognostic classification of risk score, a ROC study was conducted. We looked at the prognosis prediction classification efficiency at 1, 3, and 5 years. For the survival rates of 1, 3, and 5 years in the TCGA cohort, the prognostic signature had AUC values of 0.651, 0.638, and 0.622, respectively. At 1, 3, and 5 years, the AUC values in the GEO dataset were 0.560, 0.636, and 0.557 (Figure 3F). These results showed that the developed prognostic tool has good sensitivity and specificity to estimate SKCM patients.We used immunohistochemistry findings from the Human Protein Atlas database to demonstrate that ALOX5 was significantly increased in normal skin tissue and CHAC1 was significantly increased in melanoma tissue to further establish the expression of two identified genes in the signature (Figure 4).

Figure 3 Ferroptosis-related gene signature has prognostic significance in SKCM both in TCGA and GEO datasets. (A) mRNA risk level distribution; (B) a heatmap of two ferroptosis-related genes in two groups from TCGA and GEO cohorts; (C) KaplanMeier study for patients classified as high or low risk based on their risk score; (D) patient survival status distribution in two groups. The dot reflects the patients condition, which is assessed as the risk score increases. (E) Mortality rates in two groups; (F) ROC curve regression in TCGA and GEO cohorts.

Figure 4 The expression of hub ferroptosis-related genes was tested using the HPA database in SKCM and normal tissue. (A) ALOX5 (B) CHAC1.

The signature models independence was determined using univariate and multivariate Cox regression analyses in clinical applications in the TCGA (Figure 5A) and GEO (Figure 5B) datasets. By using univariate Cox study, risk score was positively correlated with prognosis; however, by using multivariate Cox study, it indicated that the signature was an independent prognostic risk factor. Our results showed that the two-gene signature worked effectively in clinical practice.

Figure 5 In the TCGA and GEO cohorts, Independent prognostic factors for SKCM OS were discovered using univariate and multivariate studies. (AB) TCGA cohort (CD) GEO cohort.

We generated nomograms that combined both the ferroptosis-related signature and the typical clinicopathological factors centered on the TCGA cohort (Figure 6A) and GEO cohort (Figure 6E) to estimate OS risk of people with SKCM using a quantitative process. The nomograms had reasonable precision as an optimal model in both the TCGA dataset (Figure 6BD) and the GEO dataset, according to calibration plots (Figure 6FH).

Figure 6 (A) In the TCGA cohort, nomograms were shown to predict OS of SKCM patients based on age, stage, and risk score. (BD) TCGA cohort calibration curves after 1-, 3-, and 5 years. (E) In the GEO cohort, a nomogram dependent on stage and risk score was shown to estimate 1-, 3-, and 5-year OS of SKCM patients. (FH) GEO cohort 1-, 3-, and 5-year calibration curves.

We used GSEA to determine between high and low risk groups in terms of biological pathways. In TCGA and GEO cohorts, GSEA research showed the gene sets were greatly enriched in RNA polymerase and Aminoacyl tRNA biosynthesis. Oxidative phosphorylation was also shown to be enriched in the TCGA dataset, as was base excision repair in the GEO dataset (Figure 7).

Figure 7 GSEA enrichment between groups of low and high risk.

CIBERSORT was performed to better understand how the two-gene signature and the immune microenvironment interacted, and detailed comparisons with the risk score were created. Figure 8A shows the relative content distribution of 22 immune cells in TCGA cohort. Figure 8B shows in high-risk population, the concentrations of Macrophages M0 and Mast cells resting are higher than the other group. In the high-risk population, T cells CD4 memory resting, T cells CD8, T cells CD4 memory activated, and Macrophages M1 were lower than the other group. As seen in Figure 9, tumor-infiltrating immune cells are independent predictors of cancer survival. As a result, we evaluated whether ALOX5 expression is related to the amount of immune infiltration in SKCM. We examined the correlation between gene signatures (ALOX5 and CHAC1) and 24 immune cell subsets in SKCM and discovered that ALOX5 has a strong positive correlation with B cell memory, B cell naive, plasma cells, CD8 T cells, and T cells regulatory; however, ALOX5 has a robust negative correlation with macrophage M2, eosinophils, mast cells resting, and NK cells resting. Another analysis revealed that CHAC1 expression was substantially connected with the infiltration level of activated NK cells (R =0.15, p =0.007), T cell regulatory (R =0.11, p=0.022), and Eosinophils (R =0.11, p=0.022), but not with the infiltration level of T cell memory (R =0.21, p=0.0001).

Figure 8 Immune cell infiltration in SKCM patients: distribution and visualization (A) Description of 22 immune cell subtypes calculated compositions in TCGA. (B) In TCGA, 22 immune cell subtypes were compared between two groups.

Figure 9 Correlation between ALOX5, CHAC1 and infiltrating immune cells in SKCM patients.

The relationship between three immune checkpoint genes and risk score was studied in the TCGA and GEO cohorts. Low levels of PD-1, PD-L1, and CTLA4 demonstrated weak survival, as seen in Figure 10A. In both the TCGA and GEO datasets, we discovered the low-risk population had higher levels of PD-L1, PD-1 and CTLA4 level than high-risk group, that risk score was significantly negatively linked with CTLA4, PD-L1, and PD-1 (Figure 10BD), suggesting the low-risk group was far more likely to provide an immune response to immunotherapy.

Figure 10 The risk score and the levels of PD-1, PD-L1, and CTLA4 were linked in the TCGA and GEO cohorts. (A) KaplanMeier study for SKCM patients classified as high or low risk based on PD-1, PD-L1, and CTLA4 expression; (B) PD-1 expression in two groups and the correlation between PD-1 level and risk score; (C) PD-L1 expression in two groups and the correlation between PD-L1 level and risk score; (D) CTLA4 expression in two groups and the correlation between CTLA4 and risk score.

Melanoma is the most aggressive form of skin cancer, and its prevalence is on the increase across the world.20 While intense sporadic sun exposure is the most important risk factor for melanoma, other factors such as family background, genetic sensitivity, environmental factors, and immunosuppression often play a role.21 Since SKCM is a molecularly heterogeneous cancerous cancer, its molecular characteristics are linked to biological processes such as cell proliferation, microvascular infiltration, and distance metastasis, and they play a significant role in the prognosis of SKCM.22 As a consequence, Its critical to define important molecular markers that influence the prognosis of SKCM patients, allowing for better early diagnosis and treatment to improve SKCM clinical outcomes.

The improvement of high-throughput techniques developed has opened up the possibility of discovering new genes implicated in the onset and evolution of SKCM. Ferroptosis entails iron-dependent oxidation and is a mediated autophagic cell death process.23 Excessive intracellular iron storage is caused by disturbances in iron metabolism, which may lead to ferroptosis.24 Several genes influence ferroptosis. Previous research has shown that ferroptosis is an important method for killing SKCM cells, but the exact molecular modifications and mechanism of action remain unknown.

The aim of this research was to identify ferroptosis-related genes that were correlated with SKCM prognosis by analyzing SKCM-related RNA sequences obtained from high-throughput array technologies utilizing Cox proportional hazards regression and LASSO approaches. Previous studies identified several genes, lncRNAs and miRNAs as promising therapeutic biomarkers in SKCM.2527 However, the differentially expressed signatures were explored between the normal and tumor samples, or between the primary and metastatic tissues, and molecules associated with the progression of cancer were not taken into consideration. Our model is based on the construction of ferroptosis-related genes. We also compared the our model to other researchers such as Shou et al constructed a model based on hypoxic genes, but it did not work well in the validation set and there was no complete 1, 3 and 5 year predictive capability.28 Wu et al constructed a prediction model for SKCM, but the sample size of the validation set was too small to represent the accuracy of the model.29 Two genes (ALOX5, CHAC1) collaborated to create a prognosis model that accurately estimated the prognosis of patients with SKCM, according to our findings. Furthermore, differences in the underlying diseases of SKCM have no impact on the expression features of the two genes, meaning that the prognosis model should be used to determine prognosis in a wide range of SKCM patients. ALOX5 is a member of the arachidonic acid-derived family of proinflammatory lipid mediators. ALOX5 also plays an important role in lipid peroxidation mediation.30 ALOX5 has recently been discovered to play a key role in cell death processes such as apoptosis and ferroptosis.31 CHAC1 is a protein that belongs to the glutamylcyclotransferase family. Deglycination of the Notch receptor, which avoids receptor maturation and reduces Notch signaling, has been shown to facilitate neuronal differentiation by the encoded protein.32 This protein can also be involved in the unfolded protein reaction, glutathione control, and cellular oxidative equilibrium.33 CHAC1 was discovered to digest glutathione, converting it to 5-oxoproline and Cys-Glydipeptide, lowering intracellular GSH levels.34 Increased expression of CHAC1 in breast and ovarian cancer patients may mean a higher risk of cancer recurrence.35 Until now, the mechanism of ALOX5 and CHAC1 in SKCM has remained a mystery.

Since immune cell penetration is essential in tumors, In each SKCM specimen, CIBERSORT was also performed to measure proportional proportion of 22 different types of immune cells.36 According to some data, the interaction between the tumor and the microenvironment is important in the development of SKCM and the likelihood of responding to immunotherapies.37 As a result, we investigated whether a ferroptosis-related gene signature may be used to detect immune cell infiltration. The proportion of T cells CD4 memory resting, T cells CD8, and Macrophages M1 and T cells CD4 memory activated in low-risk group contributed more to immune response than the other group, according to our findings.

Immunotherapy has shone new light on the management of SKCM, with immune checkpoint inhibitors (ICIs) emerging as a theoretically successful treatment option.38 Anti-tumor immunity could be boosted by targeting immune checkpoint molecules.39,40 The association between ferroptosis-related gene signature and ICI reactivity was used to forecast ICI reactivity. The low-risk population had higher levels of PD-L1, PD-1, and CTLA4 expression than the high-risk category. In SKCM patients, low PD-L1, PD-1, and CTLA4 expression are linked to a weak prognosis, indicating that a ferroptosis-related gene signature has the ability to identify immunogenic and ICI-responsive SKCM patients. The therapeutic selection of ICIs in clinical practice is theoretically based on the predictive ability of ferroptosis-related gene signature. Hopefully, this predictive approach can help to speed up the development of personalized cancer immunotherapy.

Additionally, in order to evaluate the prognostic significance of the new risk model, we performed the Log rank test and the ROC curve analysis to investigate the association between the model and clinical parameters.To improve the precision of prognostic prediction, we created and validated a nomogram by combining risk score, era, and level, which could help predict clinical outcomes in SKCM patients. By the use of AUC curves, we next interrogated whether the ferroptosis-related gene patterns could serve as an early predictor for the incidence of SKCM. Our model demonstrated an AUC of 0.651, 0.638, and 0.622 in the TCGA at 1, 3, and 5 years respectively. More specifically, these modern prognostic methods have the potential to not only increase prognostic prediction precision but also to estimate the real mortality risk of particular patients, which is critical in clinical practice. Combining our prognostic model with clinicopathological indications improved prediction sensitivity and specificity for 1-, 3-, and 3-year OS, resulting in better medical therapy. To sum up, our research results indicate that a two-gene prognostic model is a reliable tool for predicting the overall survival of SKCM; it may be useful for guiding therapeutic strategies to improve the clinical outcome of melanoma patients This research has a number of advantages. First, this signature has been thoroughly tested and analyzed through a variety of databases, demonstrating its robustness and durability. Second, an extensive and in-depth study was conducted on a variety of topics, including discussions on the relationship between ferroptosis-related gene signatures and immune cells, as well as immune checkpoints. Third, a nomogram for quantitative measurement was created, which is helpful for clinical promotion and implementation. Nonetheless, there are a few flaws in our study. As a result, further SKCM patients and validations are required to validate this signature in prospective studies. However, there were several limitations to this study. Firstly, it was based solely on the TCGA and GEO databases; so, the finding must be validated using large clinical samples. Furthermore, because this study is based on a retrospective analysis, a prospective study should be conducted to confirm the model. Thirdly, more research into the processes of ALOX5, CHAC1 in SKCM is needed.

Finally, we developed a ferroptosis-based gene signature that is strongly related to the immune microenvironment and can better predict survival and represent immunotherapy efficacy in SKCM patients. The ferroptosis-related gene signature may potentially offer an important method to fulfill the therapeutic criteria of SKCM therapy to some extent in the era of precision medicine.Ferroptosis is a type of cell death that varies from apoptosis in that the formation of iron-dependent lipid peroxides causes it.41 Much or insufficient ferroptosis is associated with a rising number of physiological and pathological processes, as well as dysregulated immune responses.42 Despite being mechanistically revealed in vitro,43,44 accumulating data suggest that ferroptosis may be involved in many pathogenic scenarios.45 Ferroptosis role in T cell immunity and cancer immunotherapy, however, is uncertain.

Immune checkpoint blockade medications are novel immunotherapies that selectively activate T cells innate ability to attack tumors.46 The important function of iron in tumor development is linked to its potential to modulate both innate and acquired immune responses, particularly in T cells and macrophages. Our findings revealed a strong positive correlation between gene signatures (ALOX5 and CHAC1) and 24 immune cell subsets in SKCM, with ALOX5 having a strong positive correlation with B cell memory, B cell naive, plasma cells, CD8 T cells, and T cells regulatory; however, ALOX5 has a robust negative correlation with macrophage M2, eosinophils, mast cells resting, and NK cells resting. CHAC1 expression was found to be significantly linked to the infiltration levels of activated NK cells, T cell regulatory cells, and Eosinophils, but not to the infiltration level of T cell memory cells, according to another study.

According to a recent study showed the specific makeup of the lymphatic environment may inhibit melanoma cells from undergoing ferroptosis, therefore boosting metastasis.47 The immune systems interaction with ferroptosis is still unknown. Macrophages have a critical function in iron metabolism regulation.48 ALOX5 was found to be involved in forming leukotriene B4 (LTB4), a pro-inflammatory lipid mediator that acts as a phagocyte chemoattractant in previous investigations.49,50 Researchers also suggested that melanomas ferroptosis cells release lipid mediators such LTB4 via ALOX5 to recruit macrophages to the ferroptosis cell location. Previous research has shown that immunotherapy-activated CD8 + T cells make tumors more susceptible to ferroptosis and, as a result, improve immunotherapy efficacy in melanoma patients.51 The era of immunity and iron has dawned in cancer treatment. A potential cancer treatment is ferroptosis-driven nanotherapeutics integrated with immunomodulation.52 Immunotherapy combined with radiotherapy has been shown to trigger ferroptosis and T-cell immunity in tumors. Thus, T cell-promoted tumor ferroptosis is a novel anti-tumor mechanism. Targeting tumor ferroptosis pathway constitutes a therapeutic approach in combination with checkpoint blockade.

In conclusion, we discovered two ferroptosis-related genes in the OS of SKCM with strong predictive capacity, and the prognostic model based on the two genes worked well. The ferroptosis-related gene signature may also reflect the immune microenvironment and the efficacy of immunotherapy in SKCM patients.

The authors report no conflicts of interest in this work.

1. Jenkins RW, Fisher DE. Treatment of advanced melanoma in 2020 and beyond. J Invest Dermatol. 2021;141:2331. doi:10.1016/j.jid.2020.03.943

2. Scolyer RA, Rawson RV, Gershenwald JE, Ferguson PM, Prieto VG. Melanoma pathology reporting and staging. Mod Pathol. 2020;33:1524. doi:10.1038/s41379-019-0402-x

3. Pham D, Guhan S, Tsao H. KIT and melanoma: biological insights and clinical implications. Yonsei Med J. 2020;61:562571. doi:10.3349/ymj.2020.61.7.562

4. Namikawa K, Yamazaki N. Targeted Therapy and Immunotherapy for Melanoma in Japan. Curr Treat Options Oncol. 2019;20:7. doi:10.1007/s11864-019-0607-8

5. Davis LE, Shalin SC, Tackett AJ. Current state of melanoma diagnosis and treatment. Cancer Biol Ther. 2019;20:13661379. doi:10.1080/15384047.2019.1640032

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Construction of a Ferroptosis-Related Gene Signature for Predicting Su | IJGM - Dove Medical Press

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GenSight Biologics Announces the Publication in Communications Biology of the Proof-of-Concept for GS030-Drug Product in NonHuman Primates – BioSpace

Feb. 4, 2021 06:30 UTC

PARIS--(BUSINESS WIRE)-- Regulatory News:

GenSight Biologics (Paris:SIGHT) (Euronext: SIGHT, ISIN: FR0013183985, PEA-PME eligible), a biopharma company focused on developing and commercializing innovative gene therapies for retinal neurodegenerative diseases and central nervous system disorders, today announced that the journal Communications Biology has published results from the study of GS030- Drug Product (GS030-DP) in non-human primates (NHP).

The paper*, published in the January issue under the title Optogenetic therapy: high spatiotemporal resolution and pattern discrimination compatible with vision restoration in non-human primates, is the first peer-reviewed article constituting a proof-of-concept for retinal ganglion cell (RGC) activation following optogenetic gene therapy with GS030-DP (rAAV2.7m8-ChrimsonR-tdT) in non-human primates. Specifically, the spatiotemporal activation of RGCs allowed for pattern discrimination leading to an estimated Snellen visual acuity of 20/249, superior to the level of legal blindness.

We are proud to have these results, which have been used to support the IND approval of our Phase I/II clinical trial PIONEER with GS030, published in Communications Biology, commented Bernard Gilly, Co-founder and Chief Executive Officer of GenSight. This Phase I/II clinical trial is currently recruiting retinitis pigmentosa patients with bare light perception and its objective is to demonstrate that NHP observations translate into useful visual restoration in these patients.

GS030-DP (rAAV2.7m8-ChrimsonR-tdT) is an optimized viral vector expressing the light-sensitive opsin ChrimsonR. When activated by amber light, ChrimsonR renders its host cell photosensitive, a function lost in retinal diseases causing the degeneration of photoreceptors. Optogenetics combine the cellular expression of light-sensitive opsins with fine-tuned light stimulation generated by a wearable optronic visual stimulation device (GS030-MD).

Preclinical studies generated key findings that supported the initiation of the first-in-human Phase I/II clinical trial PIONEER evaluating the safety and tolerability of the GS030 combined therapy (GS030-DP + GS030-MD) in patients with late-stage retinitis pigmentosa.

This preclinical study represents an important milestone towards the clinical validation of this approach to restore some vision in blinding retinal conditions. This journey that started more than a decade ago with the collaboration between my team at Institut de la Vision in Parisa and Pr. Botond Roska, has also benefited from scientific synergies with the team of Ed Boyden at the MIT, said Jos-Alain Sahel, MD, co-founder of GenSight and of the Institut de la Vision, Director of the IHU FOReSIGHT and Chairman of the Department of Ophthalmology at University of Pittsburgh School of Medicine. We expect that the results of the clinical trial PIONEER will indeed confirm the potency of the approach in the interest of patients.

Expression of ChrimsonR-tdT in the retina of non-human primates was safe and well tolerated

The intravitreal injection of rAAV2.7m8-ChrimsonR-tdT and the expression of ChrimsonR-tdT in the retina did not induce any significant immune reaction or intraocular inflammation. Under ambient lighting, no photophobia or visionrelated changes in behavior was noted in any of the animals injected with rAAV2.7m8-ChrimsonR-tdT. Of note, the wavelength of amber light needed to activate ChrimsonR is much safer than that of highly phototoxic blue-shifted lights.2

The AAV2.7m8 vector showed high transduction efficiency in retinal ganglion cells (RGCs)

The modified viral vector AAV2.7m8 was generated using in vivodirected evolution and selected for its ability to efficiently transduce retina cells when injected in the vitreous.1 The article authored by Gauvain et al. showed that, in macaques injected intravitreally, AAV2.7m8 transduced RGCs more efficiently than the wild-type AAV2 vector. A strong cellular expression of ChrimsonR-tdT was observed in the perifovea, where RGCs are most concentrated. Interestingly, the fluorescent marker protein td-Tomato fused to ChrimsonR seemed to increase the expression of functional opsin.

The therapeutic dose of rAAV2.7m8-ChrimsonR-tdT was defined as 5 1011 vg/eye, which allowed for greater light sensitivity and higher cellular expression in a wider area of the retina.

ChrimsonR-tdT generated a photocurrent with high temporal and spatial resolution

In functional assays (256-mutlielectrode arrays), the RGCs expressing ChrimsonR-tdT were only activated by amber light at a minimal intensity of 1015 photons cm2 s1 and did not show any response to ambient light.

The ex vivo retinal stimulation assays also showed that the electrophysiologic response of RGCs expressing ChrimsonR precisely followed the duration and frequency of the light pulses used to activate the opsin. Moreover, localized stimulation of RGCs induced a response coherent with the size and position of the light pulses.

Optogenetic stimulation of RGCs expressing ChrimsonR-tdT can support restoration of visual acuity

The electrophysiological activity of RGCs expressing ChrimsonR-tdT was consistent with the direction and speed of a moving stimulus. Furthermore, the spatiotemporal activation of treated retinas was specific to the shape of the moving symbols presented (square, circle, cross of different sizes), indicating the ability to discriminate between patterns. This level of pattern discrimination corresponded to a Snellen visual acuity of 20/249 (1.1 LogMAR), a level above the threshold of blindness (20/400) defined by the World Health Organization.3 The authors concluded that These results lay the groundwork for the ongoing clinical trial, PIONEER, with the AAV2.7m8-ChrimsonR-tdT vector for vision restoration in patients with retinitis pigmentosa.

The paper is available at https://www.nature.com/articles/s42003-020-01594-w.

GenSight Biologics expect to release early findings in the first patients of the PIONEER trial later in the first half of 2021.

*About the paper:

Optogenetic therapy: high spatiotemporal resolution and pattern discrimination compatible with vision restoration in non-human primates

Authors:

Gregory Gauvain1, Himanshu Akolkar1,2, Antoine Chaffiol1, Fabrice Arcizet1, Mina A. Khoei1, Mlissa Desrosiers1, Cline Jaillard1, Romain Caplette1, Olivier Marre1, Stphane Bertin3, Claire-Maelle Fovet4, Joanna Demilly4, Valrie Forster1, Elena Brazhnikova1, Philippe Hantraye4, Pierre Pouget5, Anne Douar6, Didier Pruneau6, Jol Chavas6, Jos-Alain Sahel1,2,3, Deniz Dalkara1, Jens Duebel1, Ryad Benosman1,2, Serge Picaud1.

Affiliations:

1 Sorbonne Universit, INSERM, CNRS, Institut de la Vision, 17 rue Moreau, F-75012 Paris, France.2 Department of Ophthalmology, University Pittsburgh Medical Center, Pittsburgh, PA, USA.3 CHNO des Quinze-Vingts, INSERM-DGOS CIC 1423, 28 rue de Charenton, F-75012 Paris, France.4 Dpartement des Sciences du Vivant (DSV), MIRcen, Institut dimagerie Biomdicale (I2BM), Commissariat lEnergie Atomique et aux Energies Alternatives (CEA), 92260 Fontenay-auxRoses, France.5 ICM, UMRS 1127 UPMC U 1127 INSERM UMR 7225 CNRS, Paris, France.6 Gensight Biologics, 74 rue du faubourg Saint Antoine, F-75012 Paris, France.

References:

About GenSight Biologics

GenSight Biologics S.A. is a clinical-stage biopharma company focused on developing and commercializing innovative gene therapies for retinal neurodegenerative diseases and central nervous system disorders. GenSight Biologics pipeline leverages two core technology platforms, the Mitochondrial Targeting Sequence (MTS) and optogenetics, to help preserve or restore vision in patients suffering from blinding retinal diseases. GenSight Biologics lead product candidate, LUMEVOQ (GS010; lenadogene nolparvovec), has been submitted for marketing approval in Europe for the treatment of Leber Hereditary Optic Neuropathy (LHON), a rare mitochondrial disease affecting primarily teens and young adults that leads to irreversible blindness. Using its gene therapy-based approach, GenSight Biologics product candidates are designed to be administered in a single treatment to each eye by intravitreal injection to offer patients a sustainable functional visual recovery.

About GS030

GS030 leverages GenSights optogenetics technology platform, a novel approach to restore vision in blind patients using a combination of ocular gene therapy and tailored light-activation of treated retinal cells. In diseases causing degeneration of photoreceptors, a therapeutic gene encoding a light-sensitive protein (ChrimsonR-tdT) is introduced into retinal ganglion cells (RGC) to turn them into photosensitive cells, and thereby restore the ability of the retina to respond to light. Chrimson-tdT is a light-sensitive channelrhodopsin that is activated by high intensities of amber light. An external wearable medical device is therefore needed to stimulate the treated retina. The lightstimulating goggles (GS030-MD) encode the visual scene in real-time and project a light beam at a specific wavelength and intensity onto the treated retina. Treatment with GS030 requires that patients wear the external wearable device to enable restoration of visual function. With the support of the Institut de la Vision in Paris and the team of Dr. Botond Roska at the Friedrich Miescher Institute in Basel, GenSight is developing GS030 combined optogenetic therapy to restore vision in patients suffering from retinitis pigmentosa (RP). Of note, GenSights optogenetics approach is independent from the specific genetic mutations causing blindness. This technology could be applied to other diseases of the retina in which photoreceptors degenerate, like dry agerelated macular degeneration (dry-AMD).

About Optogenetics

Optogenetics is a biological technique that involves the transfer of a gene encoding for a light sensitive protein to cause neuronal cells to respond to light stimulation. As a result, it is a neuromodulation method that can be used to modify or control the activities of individual neurons in living tissue and even in-vivo, with a very high spatial and temporal resolution. Optogenetics combines the use of gene therapy methods to transfer a gene into target neurons with the use of optics and electronics (optronics) to deliver the light to the transduced cells. Optogenetics is widely used by research laboratories throughout the world and holds clinical promise in the field of vision impairment or degenerative neurological disorders.

About Retinitis Pigmentosa (RP)

Retinitis Pigmentosa (RP) is a family of orphan genetic diseases caused by multiple mutations in numerous genes involved in the visual cycle. Over 100 genetic defects have been implicated. RP patients generally begin experiencing vision loss in their young adult years, with progression to blindness by age 40. RP is the most widespread hereditary cause of blindness in developed nations, with a prevalence of about 1.5 million people throughout the world. In Europe and the United States, about 350,000 to 400,000 patients suffer from RP, and every year between 15,000 and 20,000 new patients with RP lose sight. There is currently no existing curative treatment for RP.

a Serge Picaud, Jens Duebel, Deniz Dalkara and Gregory Gauvain

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GenSight Biologics Announces the Publication in Communications Biology of the Proof-of-Concept for GS030-Drug Product in NonHuman Primates - BioSpace

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Prowess of Bionano Genomics’ Saphyr System in Uncovering Novel Genetic Variations That Cause Cancer and Genetic Disease in Full Display at ASHG 2020 -…

SAN DIEGO, Oct. 27, 2020 (GLOBE NEWSWIRE) -- Bionano Genomics, Inc. (Nasdaq: BNGO) announced that human genetics researchers using the Saphyr system will present their results at the American Society of Human Genetics (ASHG) Annual Meeting, being held virtually at http://www.ashg.org between October 27-30. The impact of structural variation analysis using the Saphyr system will be demonstrated at ASHG with 18 oral and poster presentations which cover an expanding array of diseases like cancer predisposition, microdeletion syndromes, repeat expansion disorders, neurodegenerative diseases, disorders of sex development and a variety of other genetic diseases. Additionally, these presentations show Saphyrs abilities to elucidate the exact structure of complex genomic rearrangements such as large inversions, chromothripsis and low copy repeats.

The scientific importance and quality of the studies utilizing Saphyr and presented at ASHG have increased year over year, said Erik Holmlin, Ph.D., CEO of Bionano. As more scientists present and publish their important discoveries made with Saphyr, an increasing number of potential future Saphyr users become aware of its prowess in uncovering novel genetic variants that contribute to cancer and genetic disease, which could drive more adoption and utilization for basic genetic research and clinical studies alike.

Below is a summary of key presentations to be given at ASHG 2020 featuring the use of Bionanos optical genome mapping technology:

Live Presentation October 29, 2020, 11:45AM-12:00PMDeciphering Genomic InversionsChristopher M. Grochowski, Baylor College of MedicineGenomic inversions are a class of structural variation (SV) relevant in evolution, speciation, and human disease but challenging to detect and resolve using current genomic assays. While short-read WGS can detect a fraction of copy number neutral inversions, those mediated by repeats or accompanied by CNVs remain challenging. The utilization of multiple technologies and visualization of unbroken DNA through long molecule approaches facilitate detection ofin cisevents and resolution of SVs containing two or more breakpoint junctions.

The following Co-Labs, Poster Sessions and Abstracts are available for on-demand viewing during and after ASHG 2020:

Bionano Laboratory Co-Lab Session: Resolving Complex Haplotypes Implicated in Alzheimers and Other Neurodegenerative Diseases.Mark T. W. Ebbert, Neuroscience Department, Mayo ClinicAlzheimers disease is genetically complex with no meaningful therapies or pre-symptomatic disease diagnostics. Most of the genes implicated in Alzheimers disease do not have a known functional mutation, meaning there are no known molecular mechanisms to help understand disease etiology.

In this co-lab session, Mark T. W. Ebbert of the Mayo Clinic will discuss his teams work toward identifying functional structural mutations that drive disease in order to facilitate a meaningful therapy and pre-symptomatic disease diagnostic. Some of the genes and regions implicated in Alzheimers disease are genomically complex and cannot be resolved with short-read sequencing technologies. These regions include MAPT, CR1, and the histocompatibility complex (including the HLA genes).

3342 Bionano Poster Session: High Throughput Analysis of Disease Repeat Expansions and Contractions by Optical MappingErnest Lam, Sr Manager Bioinformatics, Bionano GenomicsRepeat expansions and contractions are associated with degenerative disorders such as facioscapulohumeral muscular dystrophy (FSHD). Southern Blotting is the gold standard for long repeat analysis but has many limitations. Optical genome mapping allows for efficient analysis of diseases associated with repeat expansion and contraction.

2190 Bionano Poster Session: Rapid Automated large Structural Variation Detection in Mouse Genome by Whole Genome SequencingJill Lai, Sr Applications Scientist, Bionano GenomicsIdentifying SVs for key model organisms such as mouse and rat is essential for genome interpretation and disease studies but has been historically difficult due to limitations inherent to available genome technologies. We updated the Saphyr analysis pipeline such that copy number variant (CNV) and SV analyses could now be applied to mouse and other non-human species, and constructed a control SV database for annotating variants, and identified strain-specific SVs/CNVs as well as variation shared among strains.

Additional presentations/abstracts featuring optical genome mapping:

3208 - Long-read sequencing and optical mapping decipher structural composition ofATXN10repeat in kindred with spinocerebellar ataxia and Parkinsons diseasePresented by Birgitt Schuele, Associate Professor, Department of Pathology, Stanford University School of Medicine

3270 - Uniparental isodisomy, structural and noncoding variants involved in inherited retinal degeneration (IRD) in three pedigreesPresented by Pooja Biswas, Ophthalmology Department, University of California, San Diego

Data CoLab: Whole Genome Map Assembly and Structural Variation Analysis with Hitachi Human Chromosome ExplorerPresented by Hitachi-High-Tech America, Inc.

2123 - High-throughput sequencing and mapping technologies applied to 10 human genomes with chromothripsis-like rearrangementsPresented by Uir Souto Melo, Mundlos Lab, Max Planck Institute for Molecular Genetics, Berlin, Germany

2165 -nanotatoR: A tool for enhanced annotation of genomic structural variantsPresented by Emmanuele Delot, Center for Genetic Medicine Research, Childrens National Hospital, Washington, DC

2998 - Highly variable structure and organization of the human 3q29 subtelomeric segmental duplicationsPresented by Umamaheswaran Gurusamy, Cardiovascular Research Institute, University of California San Francisco

2304 - Enlightening the dark matter of the genome: Whole genome imaging identifies a germline retrotransposon insertion inSMARCB1in two siblings with atypical teratoid rhabdoid tumorPresented by Mariangela Sabatella, Princess Mxima Center for Pediatric Oncology, Utrecht, Netherlands

2318 - FaNDOM: Fast Nested Distance-based seeding of Optical MapsPresented by Siavash Raeisi Dehkordi, Computer Science & Engineering, University of California San Diego, La Jolla

3023 - Structural hypervariability of low copy repeats on chromosome 22 is human specificPresented by Lisanne Vervoort, Department of Human Genetics, KU Leuven, Leuven, Belgium

3024 - Telomere-to-telomere assembly and complete comparative sequence analysis of the human chromosome 8 centromereReviewer's Choice Award RecipientPresented by Glennis Logsdon, Genome Sciences, University of Washington, Seattle, WA

3311 - Comprehensive structural variant identification with optical genome mapping and short-read sequencing for diagnosis of disorders/differences of sex development (DSD)Reviewer's Choice Award RecipientPresented by Hayk Barseghyan, Center for Genetic Medicine Research, Children's National Hospital, Washington, DC

3318 - De novo mutation and skewed X-inactivation in girl with BCAP31-related syndromePresented by H.J. Kao, Institute of Biomedical Sciences, Academia Sinica, Taipei, Taiwan

3560 - Resolving genomic structures inMECP2Duplication Syndrome provides insight into genotype-phenotype correlationsReviewer's Choice Award RecipientPresented by Davut Pehlivan, Molecular and Human Genetics, Baylor College of Medicine, Houston, TX

2157 -methometR: quantification of long-range haplotype specific methylation levels from Optical Genome MapsPresented by Surajit Bhattacharya, Center for Genetic Medicine Research, Childrens Research Institute, Childrens National Hospital, Washington, DC

About Bionano GenomicsBionano is a genome analysis company providing tools and services based on its Saphyr system to scientists and clinicians conducting genetic research and patient testing, and providing diagnostic testing for those with autism spectrum disorder (ASD) and other neurodevelopmental disabilities through its Lineagen business. Bionanos Saphyr system is a platform for ultra-sensitive and ultra-specific structural variation detection that enables researchers and clinicians to accelerate the search for new diagnostics and therapeutic targets and to streamline the study of changes in chromosomes, which is known as cytogenetics. The Saphyr system is comprised of an instrument, chip consumables, reagents and a suite of data analysis tools, and genome analysis services to provide access to data generated by the Saphyr system for researchers who prefer not to adopt the Saphyr system in their labs. Lineagen has been providing genetic testing services to families and their healthcare providers for over nine years and has performed over 65,000 tests for those with neurodevelopmental concerns. For more information, visitwww.bionanogenomics.com or http://www.lineagen.com.

Forward-Looking StatementsThis press release contains forward-looking statements within the meaning of the Private Securities Litigation Reform Act of 1995. Words such as may, will, expect, plan, anticipate, estimate, intend and similar expressions (as well as other words or expressions referencing future events, conditions or circumstances) convey uncertainty of future events or outcomes and are intended to identify these forward-looking statements. Forward-looking statements include statements regarding our intentions, beliefs, projections, outlook, analyses or current expectations concerning, among other things: the timing and content of the presentations identified in this press release; the effectiveness and utility of Bionanos technology in basic genetic research and clinical settings; the contribution of Saphyr to uncovering novel genetic variants that contribute to cancer and genetic disease; the benefits of Bionanos optical mapping technology and its ability to facilitate genomic analysis in future studies; and Bionanos strategic plans. Each of these forward-looking statements involves risks and uncertainties. Actual results or developments may differ materially from those projected or implied in these forward-looking statements. Factors that may cause such a difference include the risks and uncertainties associated with: the impact of the COVID-19 pandemic on our business and the global economy; general market conditions; changes in the competitive landscape and the introduction of competitive products; changes in our strategic and commercial plans; our ability to obtain sufficient financing to fund our strategic plans and commercialization efforts; the ability of medical and research institutions to obtain funding to support adoption or continued use of our technologies; the loss of key members of management and our commercial team; and the risks and uncertainties associated withour business and financial condition in general, including the risks and uncertainties described in our filings with the Securities and Exchange Commission, including, without limitation, our Annual Report on Form 10-K for the year ended December 31, 2019 and in other filings subsequently made by us with the Securities and Exchange Commission. All forward-looking statements contained in this press release speak only as of the date on which they were made and are based on management's assumptions and estimates as of such date. We do not undertake any obligation to publicly update any forward-looking statements, whether as a result of the receipt of new information, the occurrence of future events or otherwise.

CONTACTSCompany Contact:Erik Holmlin, CEOBionano Genomics, Inc.+1 (858) 888-7610eholmlin@bionanogenomics.com

Investor Relations Contact:Ashley R. RobinsonLifeSci Advisors, LLC+1 (617) 430-7577arr@lifesciadvisors.com

Media Contact:Darren Opland, PhDLifeSci Communications+1 (617) 733-7668darren@lifescicomms.com

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Prowess of Bionano Genomics' Saphyr System in Uncovering Novel Genetic Variations That Cause Cancer and Genetic Disease in Full Display at ASHG 2020 -...

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