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Qiu, R.

Publications and source records attributed to Qiu, R..

2 recordsLinked to original sources

A direct, MFRN-independent Fe(II) transfer pathway at mitochondria-lysosome contacts

Mitochondrial iron homeostasis is fundamental to respiration and redox balance, and its dysregulation is implicated in neurodegeneration, cardiomyopathy, and metabolic diseases. Although lysosomes harbor the major cellular iron reservoir, the prevailing model holds that mitochondria acquire Fe(II) directly from the cytosolic labile iron pool (LIP) via MFRN transporters. Here, we challenge the canonical view by identifying a direct, MFRN-independent Fe(II) transfer pathway at mitochondria-lysosome contacts (MLCs). This VPS39/TOMM22/SFXN1-coordinated pathway enables lysosome-to-mitochondria Fe(II) flux bypassing the cytosolic LIP. Using live-cell structured illumination microscopy (SIM), we visualize direct Fe(II) transfer specifically occurring at MLCs. Multiple lines of evidence confirm that VPS39 and TOMM22 stabilize MLCs, while SFXN1 serves as the core effector protein for this MLC-dependent Fe(II) transport. Notably, SFXN1 knockdown markedly reduces mitochondrial Fe(II) levels independent of its established serine transport function. This pathway reveals a major route for mitochondrial Fe(II) acquisition to support redox homeostasis.

cell biology

MicroRNA-21 Regulates Metabolic Adaptation of Pathogenic TH17 cells and Controls Autoimmune Inflammation

TH17 cells exhibit great heterogeneity and variable functional states in vivo. However, metabolic reprogramming of TH17 cells in vivo and its regulation during autoimmunity and host defence is unknown. Here we report that TH17 cells derived in vivo show discrete metabolic states. Metabolic states of TH17 cells in vivo were controlled at the epigenetic level, with conserved regulatory region of key metabolic regulators show distinct chromatin accessibility as demonstrated by chromatin landscape profiling. TGF-{beta}1 signaling was further shown to be crucial for remodeling of TH17 cell chromatin states, Ahr and miR-21 were identified as essential metabolic regulators for TH17 cells. Understanding metabolic reprogramming of TH17 cells in vivo may therefore provide more defined therapeutic intervention to TH17 cell mediated autoimmune diseases and insights into TH17 cell mediated host defence.

immunology