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Mahato, B.

Publications and source records attributed to Mahato, B..

2 recordsLinked to original sources

Explainable models using transcription factor binding and epigenome patterns at promoters reveal disease-associated genes and their regulators in the context of cell-types

Understanding genome-wide epigenetic regulation of diseases is important in establishing pathogenic factors and could aid in disease diagnosis, prognosis, and therapeutics. In this study, we have utilized transcription factors (TFs) and co-factor profiles (n=823) as features in machine learning models to link them to various diseases. Further, along with TFs and co-factor profiles, histone modifications ChIP-seq (n = 621), cap analysis gene expression (CAGE) tags (n = 255), and DNase hypersensitivity profiles (n = 255) as features allowed for the modeling of association of coding and non-coding genes to diseases. Such predicted associations could be independently validated using genome-wide association data and survival analysis. However, the unique aspect of our approach is that it highlights the link between TF binding patterns and diseases in the context of cell types. Besides highlighting relevant TF-binding in known cell-types associated with diseases, it also provided their surprising link with TFs expressed in immune cells and other seemingly non-related cells. Further investigation revealed such links to be genuine and potentially useful for prognosis, further revealing the need to deconvolve a set of known genes associated with diseases.

bioinformatics↗

Vision rescue via chemically engineered endogenous retinal ganglion cells.

Loss of retinal ganglion cells (RGCs) is a major cause of vision loss in optic neuropathies such as glaucoma, with no available treatments to restore vision. In teleost fish, Muller glia possesses a remarkable regenerative capacity to replace lost RGCs and restore vision--a capability lacking in mammals. Here, we have identified a six-small molecule cocktail (6C) that induces in vivo reprogramming of retina resident Muller glia into retinal neurons within the ganglion cell layer (GCL) following RGC injury. We name these cells "chemically induced GCL neurons (CiGN)". During reprogramming process, Muller glia re-enters the cell cycle in the inner nuclear layer, asymmetrically divide, proliferate and migrate to the GCL as SOX2+ and SOX2- intermediates, exit the cell cycle, and differentiate into CiGN cells--mirroring some aspects of retinal regeneration seen in teleost fish. Functionally, 6C treatment restores long-term visual functions in rodent models of ocular hypertension and NMDA-induced RGC injury. Notably, 6C induces axon extension along the optic nerve and establish connections to the lateral geniculate nucleus (LGN) possibly through a neuronal relay mechanism. These findings highlight small molecule mediated cellular reprogramming as a potential therapeutic strategy for vision restoration in glaucoma and other optic neuropathies that affects millions of children and adults worldwide.

cell biology↗