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Biology subjects

Shaaban, R.

Publications and source records attributed to Shaaban, R..

3 recordsLinked to original sources

Comparative Transcriptomic Analysis of Obesity and Lipodystrophy Reveals Shared Mechanisms and Novel Targets in Adipose Tissue Dysfunction

The global rise in obesity poses a major public health challenge. While chronic energy surplus is a well-established driver of weight gain and obesity, the mechanisms linking adipose tissue (AT) expansion to cardiometabolic complications remain incompletely understood. In obese individuals, dysfunctional AT loses its capacity to store excess lipids, leading to ectopic fat accumulation and contributing to cardiometabolic complications such as type 2 diabetes. However, the molecular events that drive the transition from healthy to dysfunctional adipocytes are poorly defined. At the opposite end of the adiposity spectrum, lipodystrophies represent a heterogeneous group of disorders characterized by selective loss of AT, often accompanied by severe metabolic disturbances. Despite these contrasting adipose phenotypes, both obesity and lipodystrophy result in similar metabolic complications. In this study, we investigated whether AT in these two contrasting conditions shares a common molecular signature. We performed an unbiased comparative transcriptomic analysis of AT from lipodystrophic BSCL2-deficient and obese mice, identifying a shared signature of 129 genes. Using publicly available datasets, we replicated this signature and refined it to 102 genes whose expression is consistently altered in both obese and lipodystrophic adipose tissue. Correlation network analysis, gene ontology, and literature-based refinement revealed that these genes fall into nine functional categories: lipogenesis, adipocyte differentiation, carbohydrate metabolism, mitochondrial function, amino acid metabolism, reactive oxygen species, metabolic processes, immune response, and a group with no clear functional association. Most of these genes expression levels correlated strongly with insulin sensitivity across lipodystrophic and obese mice, as well as human samples. Finally, 52 genetic loci containing these genes harbor variants associated with type 2 diabetes, including 11 loci where genetic associations directly influence candidate gene expression levels. In conclusion, our findings demonstrate that a shared "energetic collapse" of adipocytes, characterized by profound metabolic inflexibility in pathways spanning glucose utilization, lipogenesis, and amino acid catabolism, represents a common pathogenic mechanism underlying adipose tissue dysfunction in both obesity and lipodystrophy. This convergent molecular signature underscores the critical role of intrinsic adipocyte metabolic health in systemic energy homeostasis and insulin sensitivity.

physiology↗

Tripartite ER-Mitochondria-Lipid Droplets contact sites control adipocyte metabolic flexibility

Obesity is a major risk factor for cardiometabolic diseases, with adipocyte dysfunction playing a central role. Understanding how lipid storage and mobilization are regulated--and disrupted--in adipocytes is key to addressing obesity-associated complications. The ER-anchored protein Seipin controls lipid droplet (LD) biogenesis and maintenance, and its loss disrupts ER-LD contact sites. In humans, Seipin deficiency causes generalized lipodystrophy, a severe form of adipocyte dysfunction. We previously showed that Seipin also localizes at ER-mitochondria contact sites (MAM), where it regulates calcium exchange and mitochondrial function. Here, we examined whether Seipin targeting to MAM and ER-LD sites overlaps functionally. We analyzed subcutaneous adipose tissue (AT) from inducible Seipin-knockout mice using transmission electron microscopy (TEM) and proximity ligation assays (PLA) to quantify membrane contact sites (MCS) involving the ER, LDs, and mitochondria. In control mice, feeding reduced MAMs while increasing ER-LD and mitochondria-LD contacts, whereas Seipin deficiency abolished this remodeling. Specifically, under lipid loading, MAMs located in proximity to LDs--tripartite contact sites known as MAM-LD--were increased in control but not in Seipin-deficient adipocytes. Fluorescence recovery after photobleaching assays revealed that Seipin depletion impairs triglyceride transfer to LDs, an effect rescued by the MAM-LD-reinforcing synthetic peptide Linker-ER-Mi. Importantly, this rescue was abolished by silencing the mitochondrial calcium uniporter, demonstrating that calcium exchange is critical for triglyceride storage in LDs. We further investigated how MAM-LD remodeling influences adipocyte metabolic flexibility. Using TEM and PLA, we monitored two MAM subtypes: those forming MAM-LD and those engaging cytosolic mitochondria (MAM-CM). During adipogenesis, MAM-LD frequency increased while MAM-CM decreased. Similarly, in mouse AT and 3T3-L1 adipocytes, lipid loading selectively promoted MAM-LD. Notably, this adaptive remodeling of membrane contact sites was blunted in the adipose tissue of diet-induced obese mice. Genetic disruption of MCS in 3T3-L1 adipocytes altered lipid flux, impaired lipolysis, and reduced insulin signaling. Together, our findings identify MAM-LD contacts as key regulators of adipocyte lipid handling and metabolic flexibility, whose disruption may underlie the metabolic inflexibility of obesity.

cell biology↗

Seipin Regulates Caveolin-1 Trafficking and Organelle Crosstalk

Caveolin-1 (CAV1), the main structural component of caveolae, is essential in various biological processes, including mechanotransduction, lipid metabolism, and endocytosis1-4. Deregulation of CAV1 dynamics is linked to various pathologies, including cellular senescence, cancer, insulin resistance, and lipodystrophy5-9. However, mechanisms regulating CAV1 trafficking and function remain poorly understood. Here, we show that seipin, a crucial lipid droplet (LD) biogenesis factor10, modulates CAV1 trafficking. Deletion of seipin resulted in the accumulation of saturated lipids, leading to ceramide and sphingomyelin overproduction, which disrupted the membrane order of the trans-Golgi network (TGN). In seipin deficiency, CAV1 location to the plasma membrane (PM) was impaired, reducing caveolae. Instead, CAV1 accumulated in TGN and late endosome compartments, which fused with LDs and delivered the protein. In wild-type (WT) cells, this process was minimal but significantly enhanced by treatment with palmitate, ceramide, or Stearoyl-CoA desaturase-1 (SCD1) inhibition. Conversely, in seipin-deficient cells, inhibiting Fatty Acid Synthase (FASN) or overexpressing SCD1 restored CAV1 localization to the PM and reduced its accumulation in LDs. Our findings reveal that seipin controls the funneling of palmitate toward glycerolipids synthesis and storage in LDs versus conversion to ceramides in the ER. This balance is crucial to cellular protein trafficking by controlling the TGN membrane order. Therefore, our study identifies seipin as a critical regulator of cellular lipid metabolism, protein trafficking, and organelle homeostasis. These findings shed light on the processes regulating CAV1 trafficking and show that convergent pathophysiological mechanisms associated with defects in CAV1 and seipin contribute to metabolic disorders, including insulin resistance and lipodystrophies11-14.

cell biology↗