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MA, W.

Publications and source records attributed to MA, W..

4 recordsLinked to original sources

Pancreatic Duct Cells as a Potential Source for Human Islet Neogenesis: Insights from Imaging Mass Cytometry

The question of whether islet neogenesis occurs in adult humans has been a subject of long-standing debate. To explore the characteristics of islet endocrine cells associated with pancreatic ducts, we employed imaging mass cytometry to examine pancreatic tissues from individuals across different age groups, including those with prediabetes or type 2 diabetes (T2D). Our analysis revealed the presence of all five pancreatic islet endocrine cell types, along with two types of non-hormone-expressing endocrine cells, located within or immediately adjacent to the ducts. These cells were most abundant in infancy, with a gradual decline observed through adulthood. Notably, ductal {beta} cells predominated in infancy, whereas ductal cells became more prevalent in adulthood, and significantly increased in the group aged over 60 years. Obesity further increased the ductal {beta} cells in the subjects aged over 60 years. Under prediabetic and T2D conditions, an increase in all duct-related endocrine cells was observed. These findings indicate that ductal cells may serve as a reservoir for new pancreatic endocrine cells, offering potential insights into the promotion of endogenous {beta} cell regeneration in diabetic patients. Highlights{bigcirc} Characterization of various islet endocrine cell types related to ducts in human pancreas. {bigcirc}The insulin-positive cells are the dominant cells among all duct-related islet endocrine cell types during the infancy period, however, the glucagon-positive cells become the dominant cells in adulthood. {bigcirc}T2D, Obesity, and aging are involved in the increase in the number of duct-related endocrine cells.

developmental biology↗

Tryptophan Chemistry Driven by a Widespread Cytochrome P422 Enzyme Family

Tryptophan serves as a versatile biosynthetic precursor across living organisms. While heme-binding proteins (HBPs) mediate key reactions in tryptophan transformation, the full diversity of HBPs remains largely unexplored. Here, we developed the novel Cofactor-Integrative Structural Inspector (CISSspector) to systematically identify HBPs in the extensive extant microbial genomic sequence database, which revealed several uncharacterized HBP families. We experimentally characterized one of the most prominent families, the cytochrome P422 (formerly DUF6875) family, distributed throughout the prokaryotes and eukaryotes. Strikingly, we discovered that this enzyme family orchestrates four chemically distinct and biochemically unprecedented transformations, with regioselectivity, including N1-, C6-, and C7-hydroxylations and intramolecular C-S bond formations. Notably, the discovery of enzymes capable of Trp N1- and C7-hydroxylation addresses a long-standing gap in the natural enzyme arsenal. Structural analysis of the representative cytochrome P422 enzyme Mc170 revealed a structurally unique HBP fold in which conserved residues form a substrate "clamp" that positions the tryptophan indole ring for selective modification. Our work unveils a hidden enzymatic repertoire of HBPs, expands the known landscape of tryptophan metabolism, and establishes an artificial intelligence-augmented framework for discovering cryptic enzymes with broad implications for synthetic biology and natural product discovery.

biochemistry↗

Voltage-dependent anion channels are mitophagy receptors mediating the recycling of depolarized mitochondria in Arabidopsis

The mitochondrion is an essential organelle in eukaryotic cells, playing crucial roles in cellular respiration and intracellular signaling pathways. To maintain a healthy population of mitochondria, dysfunctional and excess mitochondria are selectively removed through an autophagic process known as mitophagy. Over the past few decades, various autophagy-related (ATG) proteins involved in mitophagy have been well characterized in yeast and mammalian cells since it has significance to the survival of eukaryotes. While the core autophagy machinery responsible for autophagosome formation is conserved among eukaryotes, the homologs of key regulators of mammalian system is absent in plant. In this study, we identified a unique mitophagy mechanism in plant, that three voltage-dependent anion channel (VDAC) family proteins in the mitochondria outer membrane -- specifically VDAC1, VDAC2, and VDAC3 -- as mitophagy receptors in Arabidopsis. These proteins were required for translocation of ATG8 from the cytosol to the mitochondria surface, when Arabidopsis cells were treated with an uncoupler, 2,4-dinitrophenol (DNP). The VDACs interacted directly with ATG8 through an ATG8-interacting motif (AIM) located in their amino (N) termini. Furthermore, vdac mutants exhibited impaired uncoupler-induced mitophagy and accumulated damaged mitochondria. These mitophagy-related phenotypes were more pronounced in vdac double and triple mutant lines. Altogether, our results indicated that VDAC1, 2, and 3 recruit ATG8 to depolarized mitochondria, facilitating the formation of mitophagosomes, presenting a distinguishing mitophagy pathway with mammalian system.

plant biology↗

Cryo-EM visualizes multiple steps of dynein activation pathway

Cytoplasmic dynein-1 (dynein) is an essential molecular motor controlled in part by autoinhibition. We recently identified a structure of partially autoinhibited dynein bound to Lis1, a key dynein regulator mutated in the neurodevelopmental disease lissencephaly. This structure provides an intermediate state in dyneins activation pathway; however, other structural information is needed to fully explain Lis1 function in dynein activation. Here, we used cryo-EM and samples incubated with ATP for different times to reveal novel conformations that we propose represent intermediate states in the dyneins activation pathway. We solved sixteen high-resolution structures, including seven distinct dynein and dynein-Lis1 structures from the same sample. Our data also support a model in which Lis1 relieves dynein autoinhibition by increasing its basal ATP hydrolysis rate and promoting conformations compatible with complex assembly and motility. Together, this analysis advances our understanding of dynein activation and the contribution of Lis1 to this process.

biophysics↗