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Diabetic nephropathy (DN) is among the most lethal complications that occur in type 1 and type 2 diabetics. Podocyte dysfunction is postulated to be a critical event associated with proteinuria and glomerulosclerosis in glomerular diseases including DN. However, molecular mechanisms of podocyte dysfunction in the development of DN are not well understood. Here we have shown that activity of mTOR complex 1 (mTORC1), a kinase that senses nutrient availability, was enhanced in the podocytes of diabetic animals. Further, podocyte-specific mTORC1 activation induced by ablation of an upstream negative regulator (PcKOTsc1) recapitulated many DN features, including podocyte loss, glomerular basement membrane thickening, mesangial expansion, and proteinuria in nondiabetic young and adult mice. Abnormal mTORC1 activation caused mislocalization of slit diaphragm proteins and induced an epithelial-mesenchymal transition-like phenotypic switch with enhanced ER stress in podocytes. Conversely, reduction of ER stress with a chemical chaperone significantly protected against both the podocyte phenotypic switch and podocyte loss in PcKOTsc1 mice. Finally, genetic reduction of podocyte-specific mTORC1 in diabetic animals suppressed the development of DN. These results indicate that mTORC1 activation in podocytes is a critical event in inducing DN and suggest that reduction of podocyte mTORC1 activity is a potential therapeutic strategy to prevent DN.
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http://dx.doi.org/10.1172/JCI44771 | DOI Listing |
J Dent Res
September 2025
Key Laboratory of Shaanxi Province for Craniofacial Precision Medicine Research, College of Stomatology, Xi'an Jiaotong University, Xi'an, China.
The diabetic microenvironment intensifies M1-type macrophage-mediated inflammation and impairs bone regeneration. Glycophagy-a process of glycogen-selective autophagy that degrades intracellular glycogen into glucose-is essential for maintaining glucose homeostasis under metabolic stress. The role of glycophagy in regulating M1-type polarization remains unclear.
View Article and Find Full Text PDFJ Clin Invest
September 2025
Division of Infectious Diseases, Department of Medicine, Brigham and Women's Hospital, Boston, United States of America.
B-lymphocytes play major adaptive immune roles, producing antibody and driving T-cell responses. However, how immunometabolism networks support B-cell activation and differentiation in response to distinct receptor stimuli remains incompletely understood. To gain insights, we systematically investigated acute primary human B-cell transcriptional, translational and metabolomic responses to B-cell receptor (BCR), Toll-like receptor 9 (TLR9), CD40-ligand (CD40L), interleukin-4 (IL4) or combinations thereof.
View Article and Find Full Text PDFG Ital Nefrol
August 2025
UO Nefrologia e Dialisi, Ospedale di Cassino, Italia.
SGLT-2 inhibitors are a relatively new class of antidiabetic drugs. They activate a transcriptional response similar to calorie restriction characterized by the up-regulation of sensors involved in nutrient deprivation, such as SIRT1 and AMPK, and the down-regulation of mTOR, a molecule involved in nutritional excess signaling. The purpose of this review is to illustrate the main pathways of nutrient deprivation: a complex mechanistic framework partly responsible for the cardio-renal benefits that makes these drugs unique.
View Article and Find Full Text PDFSci China Life Sci
September 2025
The Key Laboratory of Cell Proliferation and Differentiation of the Ministry of Education, College of Life Sciences, Peking University, Beijing, 100871, China.
Hutchinson-Gilford progeria syndrome (HGPS) is a rare progeroid disorder, and approximately 90% of cases are caused by LMNA mutation that yields the lamin A/C variant progerin. Progerin is toxic, and its clearance and disruption have positive benefits on HGPS cells and mice and even HGPS patients. However, accelerating progerin clearance is still an unaddressed issue.
View Article and Find Full Text PDFAm J Respir Cell Mol Biol
September 2025
Univ. of Pennsylvania, Medicine, Philadelphia, Pennsylvania, United States.
Lymphangioleiomyomatosis (LAM) is a rare lung disease caused by hyperactivation of the mechanistic/mammalian target of rapamycin 1 (mTORC1) growth pathway in a subset of mesenchymal lung cells. Histopathologically, LAM lesions have been described as immature smooth muscle-like cells positive for the immature melanocytic marker HMB45/PMEL/gp100 and phosphorylated ribosomal protein S6 (pS6). Advances in single cell sequencing (scRNA-seq) technology allowed us to group LAM cells according to their expression of cancer stem cell (CSC) genes and identify three clusters: a high CSC-like state (SLS), an intermediate state, and a low CSC-like inflammatory state (IS).
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