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Afolabi, J.

Publications and source records attributed to Afolabi, J..

3 recordsLinked to original sources

Stress-Encoded Mitochondrial Plasticity: ATF4 Control of Mega-Mitochondria and Nanotunnel Communication

Mitochondrial structural plasticity is a critical adaptive response to cellular stress, yet the transcriptional networks governing the formation of specialized mitochondrial architectures remain poorly defined. Here, we identified and demonstrated that activating transcription factor 4 (ATF4), the master regulator of the integrated stress response, directly regulates mitochondrial morphological remodeling through a novel ATF4-NRF1/Nrf2-MFN2 signaling axis. Using serial block-face scanning electron microscopy and three-dimensional reconstruction in Drosophila flight muscle, primary myotubes, and human skeletal muscle, we show that overexpression of ATF4 promotes significant mitochondrial elongation, increased cristae concentration, enhanced mitochondrial-endoplasmic reticulum contact site (MERC) formation, and the initiation of Mitochondrial Nanotunnels. In contrast, loss of ATF4 results in mitochondrial fragmentation and impaired aerobic capacity. Chromatin immunoprecipitation sequencing reveals direct ATF4 binding at the promoters of the genes encoding NRF1 and Nrf2, which in turn regulate MFN2 expression. Small-molecule inhibition studies further establish that activation of this hierarchical pathway is both necessary and sufficient for stress-induced mitochondrial structural adaptation. Together, these findings position ATF4 as a master regulator of mitochondrial architectural plasticity, providing a direct mechanistic link between cellular stress signaling and organelle remodeling.

cell biology↗

Derlin-mediated ERAD of lipid regulator ORMDL3 safeguards mitochondrial function

Mammalian Derlin proteins (Derlin-1, Derlin-2, and Derlin-3) are conserved components of the endoplasmic reticulum-associated degradation (ERAD) machinery that mediate the retrotranslocation and proteasomal degradation of misfolded ER-resident proteins. However, their paralog-specific contributions to cellular homeostasis remain poorly understood. Here, we show that Derlin deficiency disrupts mitochondrial architecture and results in mitochondrial fragmentation and tightening of ER-mitochondria contact sites (MERCs) in HEK293 cells. Mechanistically, we identify ORMDL proteins, evolutionarily conserved negative regulators of sphingolipid biosynthesis, as substrates of Derlin-2- and Derlin-3-dependent ERAD. Derlin deficiency leads to selective accumulation of ORMDL3 and its dose-dependent enrichment at MERCs, where it drives mitochondrial dysfunction in respiration and calcium handling. Reducing ORMDL3 levels restores mitochondrial function, establishing ORMDL3 as a key effector downstream of Derlin loss. Our work establishes ERAD as a critical mechanism of protein quantity control that safeguards organelle homeostasis by preventing aberrant accumulation and mislocalization of ER clients at inter-organelle contact sites. Given that ORMDL family members are central regulators of sphingolipid metabolism and are genetically linked to inflammation, cancer, asthma, inflammatory bowel disease, type 1 and type 2 diabetes, multiple sclerosis, obesity, and nonalcoholic fatty liver disease, these findings connect ERAD-dependent spatial control to sphingolipid homeostasis and a broad spectrum of human pathologies.

cell biology↗

Light Microscopy-Based Organelle Quantification: A Comprehensive Protocol

Cellular organelles are not just static structures; they are highly dynamic and directly linked to cellular functions. Changes in their morphology can be early indicators of diseases. Recent advancements in light microscopy techniques have transformed organelle research from qualitative descriptions to precise, quantitative measurements, enabling nanoscale resolution, high-throughput image analysis, and live-cell compatibility. This enables accurate measurement of organelle morphology, dynamics, and spatial organization using modern imaging and analysis techniques. By quantifying organelles, we go beyond simply visualizing to measuring and statistically comparing cellular features across different samples. This protocol addresses a wide range of cellular organelles across all major experimental systems, specifically mentioning mitochondria, myofibers, actin filaments, endoplasmic reticulum, and Golgi apparatus, by integrating experimental design, optimized sample preparation, high-resolution imaging, and validated Fiji/ImageJ-based analysis workflows. For each organelle, step-by-step methods specify reagents, equipment, acquisition parameters, and expected results. While recent advances, such as expansion microscopy, correlative light-electron microscopy, and AI-powered segmentation, offer gains in throughput and resolution, this workflow demonstrates that Fiji-based analysis remains fully capable of delivering high-precision organelle quantification. The entire workflow can be completed within 2-4 weeks, from initial design through validation and the production of measurements suitable for cross-study comparisons. Overall, this protocol establishes a flexible approach to standardize organelle quantification to understand multiple organelles simultaneously in their cellular contexts. Basic Protocol 1: Mitochondrial Quantification Basic Protocol 2: Myofibril Quantification Basic Protocol 3: Golgi Apparatus Morphometry Basic Protocol 4: Endoplasmic Reticulum Network Analysis Alternate Protocol 1: Super-Resolution Imaging Protocol

cell biology↗