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Biology subjects

Pant, D.

Publications and source records attributed to Pant, D..

3 recordsLinked to original sources

ALS-linked KIF5A ΔExon27 mutant causes neuronal toxicity through gain of function

Mutations in the human kinesin family member 5A (KIF5A) gene were recently identified as a genetic cause of amyotrophic lateral sclerosis (ALS). Several KIF5A ALS variants cause exon 27 skipping and produce motor proteins with an altered C-terminal tail (referred to as {Delta}Exon27). However, the underlying pathogenic mechanism is still unknown. In this study, we performed a comprehensive analysis of {Delta}Exon27 at the single-molecule, cellular, and organism levels. Our results show that {Delta}Exon27 is prone to form cytoplasmic aggregates and is neurotoxic. The mutation relieves motor autoinhibition and increases motor self-association, leading to drastically enhanced processivity on microtubules. Finally, ectopic expression of {Delta}Exon27 in Drosophila melanogaster causes wing defects, motor impairment, paralysis and premature death. Our results suggest gain of function as an underlying disease mechanism in KIF5A-associated ALS.

neuroscience↗

Staphylococcus aureus prophages are gatekeepers of exogenous lipid utilization to control membrane flexibility and bacterial fitness

Phages are ubiquitous in bacteria, including clinical Staphylococcus aureus, where Sfi 21/Sa3 phages often integrate into the hlb gene, encoding Hlb sphingomyelinase. The integration acts as a rapid regulatory switch of Hlb production. Our findings suggest that Sfi 21/Sa3 prophages and Hlb activity affect S. aureus fitness by modulating the incorporation of the toxic linoleic acid (C18:2) from serum into the bacterial membrane. This process relies on C18:2 derived from 1,3-diglyceride, facilitated by the FakB1 kinase subunit. Palmitic acid (C16), primarily released from serum through Hlb activity, competes for FakB1. This mechanism contributes to adaptation to AFN-1252, an antibiotic inhibiting the fatty acid synthesis pathway (anti-FASII). Since S. aureus relies on exogenous fatty acids for growth, AFN-1252 treatment leads to increased proportion of membrane C18:2. Moreover, Hlb inhibition, whether via prophage insertion, gene inactivation, or enzyme inhibition, delays S. aureus adaptation, resulting in higher proportionof C18:2 in the membrane. This study sheds light on the role of lipid environments in infections, and may contribute to the accurate prediction of infection risks and therapeutic efficacy. Furthermore, given that both anti-FASII and Hlb inhibitors enhance C18:2 incorporation, they represent potential agents for combined strategies against S. aureus.

microbiology↗

A single cell atlas of human and mouse white adipose tissue

White adipose tissue (WAT), once regarded as morphologically and functionally bland, is now recognized to be dynamic, plastic, heterogenous, and involved in a wide array of biological processes including energy homeostasis, glucose and lipid handling, blood pressure control, and host defense1. High fat feeding and other metabolic stressors cause dramatic changes in adipose morphology, physiology, and cellular composition1, and alterations in adiposity are associated with insulin resistance, dyslipidemia, and type 2 diabetes (T2D)2. Here, we provide detailed cellular atlases of human and murine subcutaneous and visceral white fat at single cell resolution across a range of body weight. We identify subpopulations of adipocytes, adipose stem and progenitor cells (ASPCs), vascular, and immune cells and demonstrate commonalities and differences across species and dietary conditions. We link specific cell types to increased risk of metabolic disease, and we provide an initial blueprint for a comprehensive set of interactions between individual cell types in the adipose niche in leanness and obesity. These data comprise an extensive resource for the exploration of genes, traits, and cell types in the function of WAT across species, depots, and nutritional conditions.

physiology↗