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Biology subjects

Kamyshinsky, R.

Publications and source records attributed to Kamyshinsky, R..

2 recordsLinked to original sources

A multiplexed approach for genetic screening of human cells by electron microscopy uncovers a critical effector of mitochondrial cristae shape

Mitochondria form complex and diverse membrane-architectures essential for their multiple functions. Whereas critical proteins sculpting mitochondrial membranes have been identified, the molecular basis for many key features remains enigmatic. Exploration of membrane ultrastructure, in general, is limited by the tradeoff between resolution and throughput: electron microscopy (EM) is essential to resolve their ultrastructure but lacks scalability for systematic functional discovery. To overcome this limitation, we developed a high-resolution screening pipeline for EM of multiplexed human cell pools, hMultiCLEM (human Multiplexed Correlative Light and EM). To showcase the power of hMultiCLEM we performed a genetic screen exploring mitochondrial ultrastructure. hMultiCLEM confirmed proposed cristae modulators and uncovered additional ones illuminating the protein networks driving cristae organization. Validation of candidates highlighted an intermembrane space (IMS) protein linked to Menieres disease, which we named MISHA (Mitochondrial-IMS membrane-SHApe-impacting protein). More broadly, hMultiCLEM transforms the EM field, enabling genetic/chemical screening in basic and medical research.

cell biology↗

Extracellular Vesicles Mediate Glucose Regulation by GLUT4-Overexpressing Engineered Muscle Tissue in T2D Mice

1Type 2 diabetes (T2D) is characterized by impaired glucose uptake in skeletal muscle and adipose tissues, which contributes to systemic hyperglycemia. GLUT4 is a crucial component in insulin-stimulated glucose uptake and its expression as well as translocation are impaired in T2D onset. This study explored the role of extracellular vesicles (EVs) derived from GLUT4-overexpressing engineered muscle constructs (G4OE-EMC) in glucose metabolism. G4OE-EMC-derived EVs enhanced glucose uptake and insulin sensitivity both in vitro, when tested on wild-type (WT) engineered muscle constructs, and in vivo using the diet-induced obesity (DIO) mouse model. Proteomic and transcriptomic analyses revealed that the EVs were enriched in IGF1 and contained reduced levels of miRNAs, such as miR-122-5p, miR-16-5p, and miR-486-5p, which target IGF1R. The multi-omic approach used here suggests a mechanism whereby G4OE-EMC-derived EVs enhance glucose metabolism via IGF1 signaling and miRNA-mediated regulation of IGF1R expression, offering a potential therapeutic strategy for T2D.

bioengineering↗