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Kazi, R.

Publications and source records attributed to Kazi, R..

2 recordsLinked to original sources

ProxiCapture Reveals Context-Dependent CRBN Interactore Landscape of Molecular Glue Degraders

Molecular glue degraders represent a rapidly expanding class of small molecules that reprogram E3 ubiquitin ligases to ubiquitinate and degrade disease-relevant proteins. Despite their therapeutic potential, the rational design of molecular glues remains challenging, underscoring the need for unbiased discovery strategies to identify new chemical targets. To address this challenge, we developed ProxiCapture, an affinity-based proteomics workflow that models the systemic behavior of molecular glues by combining purified CRBN-{Delta}HBD protein with native cell or tissue lysates. Systematic application of ProxiCapture across eight cancer cell lines, three maturation states of immune cells, and paired primary healthy and tumor tissues, revealed a comprehensive atlas of pomalidomide interactors, including previously uncharacterized targets. These findings reveal that degrader-dependent interactors of CRBN are context-dependent, requiring broad, physiologically and systemically anchored sampling to uncover the full "glueable" proteome. Taken together, this study establishes a scalable platform that accelerates molecular glue discovery by capturing cell- and tissue-specific recruitment profiles and predicting system-wide degrader effects.

cancer biology↗

Consumption of human-relevant levels of sucrose-water rewires macronutrient uptake and utilization mechanisms in a tissue specific manner

Consumption of sugar-sweetened beverages (SSBs) have been linked to metabolic dysfunction, obesity, diabetes and enhanced risk of cardiovascular diseases across all age-groups globally. Decades of work that have provided insights into pathophysiological manifestations of sucrose overfeeding have employed paradigms that rarely mimic human consumption of SSBs. Thus, our understanding of multi-organ cross-talk and molecular and/or cellular mechanisms, which operate across scales and drive physiological derangement is still poor. By employing a paradigm of sucrose water feeding in mice that closely resembles chronic SSB consumption in humans (10% sucrose in water), we have unraveled hitherto unknown tissue-specific mechanistic underpinnings, which contribute towards perturbed physiology. Our findings illustrate that systemic impaired glucose homeostasis, mediated by hepatic gluconeogenesis and insulin resistance, does not involve altered gene expression programs in the liver. We have discovered the pivotal role of the small intestine, which in conjunction with liver and muscles, drives dyshomeostasis. Importantly, we have uncovered rewiring of molecular mechanisms in the proximal intestine that is either causal or consequential to systemic ill-effects of chronic sucrose water consumption including dysfunction of liver and muscle mitochondria. Tissue-specific molecular signatures, which we have unveiled, clearly indicate that inefficient utilization of glucose is exacerbated by enhanced uptake by the gut. Besides providing systems-wide mechanistic insights, we propose that consumption of SSBs causes intestinal molecular addiction for deregulated absorption of hexose-sugars, and drives diseases such as diabetes and obesity.

physiology↗