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Dugar, S.

Publications and source records attributed to Dugar, S..

2 recordsLinked to original sources

Targeted modulation of IGFBP5/IGF1, THPO, and P38 MAPK signaling are potent therapeutic strategies generalizable for mitochondrial respiratory chain disease and osteosarcoma

Primary mitochondrial diseases (PMD) have limited disease-modifying therapies, currently applicable to only 3 of over 400 discrete gene disorders. Cycloheximide (CHX) is a global cytosolic translation inhibitor we previously reported to rescue PMD preclinical models, although its toxicity precluded clinical development. To identify specific mediators underlying CHX treatment benefit in PMD, SOMAscan-based proteomics was performed in complex I deficient and genetic disease fibroblast cell line models grown in galactose. Thrombopoietin (THPO) and insulin-like growth factor binding protein 5 (IGFBP5) were the only two differentially regulated proteins, together with ERK/MAPK pathway dysregulation, identified upon CHX treatment in PMD versus healthy control cells. THPO inhibition by siRNA or pharmacologic approaches rescued stress-induced viability loss in patient fibroblasts having diverse PMD gene etiologies, and significantly improved mitochondrial stress, linear growth, and neuromuscular function in a classical ndufs2-/- C. elegans model. IGFBP5 overexpression by lentiviral or mRNA approaches rescued cell viability across distinct PMD gene etiologies, as did IGF1 pharmacologic inhibition across both PMD mutant and C. elegans models. MAPK pharmacologic inhibition rescued multiple distinct complex I disease cells survival, as well as mitochondrial stress in SLC25A46-/- C. elegans. Combination therapies targeting multiple of these glucose signaling pathway proteins, together with glucose and N-acetylcysteine, yielded superior therapeutic benefit in complex I disease cell and C. elegans models. Additionally, single or combined pharmacologic inhibition of THPO or IGF1 significantly enhanced primary and metastatic osteosarcoma cell death. Collectively, targeted small molecule and genetic modulation of THPO, IGF1, or MAPK recapitulated the significant therapeutic benefit of CHX in PMD, while avoiding global translation inhibition. These novel PMD therapies likely confer benefit by attenuating MAPK-driven autophagy and potentially promoting noncanonical glucose uptake, improving cellular energy balance. Overall, these glucose signaling cellular pathway targets hold broad therapeutic promise for PMD patients, warranting further clinical research development.

genetics↗

Hyperglycemia transcriptionally regulates the paranodal protein (Caspr1) in retinal neurons and modulates neurite extension

Hyperglycemia is a hallmark of diabetes, affecting neuronal structure and function by altering molecular signalling pathways. Here, we explore the role of hyperglycemia in regulating Caspr1 expression and its downstream effects on neurite outgrowth. Caspr1, a critical protein implicated in neurodegenerative diseases, was found to be significantly downregulated in N2a and 661W cell lines cultured under hyperglycemic conditions (25mM glucose) and, as a result, promoted neurite outgrowth. Knockout of Caspr1 using CRISPR-Cas9 further confirmed its inhibitory role on neurite outgrowth, as Caspr1-deficient cells exhibited enhanced neurite elongation. Caspr1 downregulation was mediated by decreased expression of C/EBP, a key transcription factor with a binding site on the Caspr1 promoter. Overexpression of C/EBP restored Caspr1 promoter activity and mRNA levels, establishing C/EBP as a critical regulator. Additionally, hyperglycemia was observed to inhibit Akt phosphorylation, which further contributed to Caspr1 downregulation. Adding insulin to the culture medium under hyperglycemic conditions shows inhibition of Akt phosphorylation and downregulation of Caspr1, resulting in a shorter length of neurites in retinal neurons. In vivo, studies in diabetic mouse models and diabetic patient samples demonstrated reduced expression of Caspr1 in retinal tissues. These results suggest that hyperglycemia regulates Caspr1 expression through Akt and C/EBP pathways, promoting neurite outgrowth in retinal neurons. In contrast, adding insulin to the medium under hyperglycemia downregulates the Caspr1 expression and reduces neurite length in retinal neurons. Targeting this pathway may offer new therapeutic approaches to mitigate neurodegeneration in diabetic retinopathy.

cell biology↗