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Neuronal differentiation involves extensive modification of biochemical and morphological properties to meet novel functional requirements. Reorganization of the mitochondrial network to match the higher energy demand plays a pivotal role in this process. Mechanisms of neuronal differentiation in response to nerve growth factor (NGF) have been largely characterized in terms of signaling, however, little is known about its impact on mitochondrial remodeling and metabolic function. In this work, we show that NGF-induced differentiation requires the activation of autophagy mediated by Atg9b and Ambra1, as it is disrupted by their genetic knockdown and by autophagy blockers. NGF differentiation involves the induction of P-AMPK and P-CaMK, and is prevented by their pharmacological inhibition. These molecular events correlate with modifications of energy and redox homeostasis, as determined by ATP and NADPH changes, higher oxygen consumption (OCR) and ROS production. Our data indicate that autophagy aims to clear out exhausted mitochondria, as determined by enhanced localization of p62 and Lysotracker-red to mitochondria. In addition, we newly demonstrate that NGF differentiation is accompanied by increased mitochondrial remodeling involving higher levels of fission (P-Drp1) and fusion proteins (Opa1 and Mfn2), as well as induction of Sirt3 and the transcription factors mtTFA and PPARγ, which regulate mitochondria biogenesis and metabolism to sustain increased mitochondrial mass, potential, and bioenergetics. Overall, our data indicate a new NGF-dependent mechanism involving mitophagy and extensive mitochondrial remodeling, which plays a key role in both neurogenesis and nerve regeneration.
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http://dx.doi.org/10.1038/s41419-018-0429-9 | DOI Listing |
ISME J
September 2025
Institute of Molecular Biology, Academia Sinica, Taipei, 11529, Taiwan.
Mutualistic endosymbiosis is a cornerstone of evolutionary innovation, enabling organisms to exploit diverse niches unavailable to individual species. However, our knowledge about the early evolutionary stage of this relationship remains limited. The association between the ciliate Tetrahymena utriculariae and its algal endosymbiont Micractinium tetrahymenae indicates an incipient stage of photoendosymbiosis.
View Article and Find Full Text PDFRedox Biol
September 2025
Department of Cardiology, Shanghai General Hospital, Shanghai Jiaotong University School of Medicine, 201620, China. Electronic address:
Pathological cardiac hypertrophy, driven by mitochondrial dysfunction and maladaptive remodeling, remains a therapeutic challenge. This study explores the cardioprotective properties of tectorigenin (Tec) in the context of transverse aortic constriction (TAC)-induced hypertrophy, focusing on mitochondrial homeostasis. In animal models, administration of Tec improved survival rates, reduced cardiac dysfunction, and decreased hypertrophy and fibrosis in TAC mice, while preserving mitochondrial function.
View Article and Find Full Text PDFInt Immunopharmacol
September 2025
Department of Immunology, School of Laboratory Medicine, Bengbu Medical University, Anhui 233030, China; Anhui Province Key Laboratory of Immunology in Chronic Diseases, Bengbu Medical University, Anhui 233030, China. Electronic address:
27-Hydroxycholesterol (27-HC) is an oxidative metabolite of cholesterol, enzymatically produced by the mitochondrial cytochrome P450 enzyme, sterol 27-hydroxylase (CYP27A1). Endogenous 27-HC maintains cholesterol homeostasis primarily via the selective inhibition of sterol regulatory element-binding protein 2 (SREBP-2). By binding to liver X receptors (LXR) and estrogen receptors (ER), 27-HC exerts diverse biological effects.
View Article and Find Full Text PDFBiomater Sci
September 2025
School of Medical Technology, Beijing Institute of Technology, Beijing 100081, China.
Cancer immunotherapy has transformed oncological treatment paradigms, yet tumor resistance and immune evasion continue to limit therapeutic efficacy. Mitochondria-targeting organic sensitizers (MTOSs) represent an emerging class of therapeutic agents that exploit mitochondrial dysfunction as a convergent node for tumor elimination and immune activation. As central regulators of cellular metabolism, apoptotic signaling, and immune cell function, mitochondria serve as critical determinants of tumor progression and the immunological landscape within the tumor microenvironment (TME).
View Article and Find Full Text PDFCirc Res
September 2025
Division of Molecular Cardiovascular Biology, The Heart Institute, Cincinnati Children's Hospital Medical Center, OH. (O.B.-E., Y.K., A.M.G., K.R.H., M.L.K., J.P.V., N.S.B., J.H., J.D.M., C.A.M.).
Background: Calcium (Ca) dysregulation is a hallmark of heart failure, impairing excitation-contraction coupling and contributing to pathological remodeling. The SERCA2a (sarco/endoplasmic reticulum Ca ATPase isoform 2a) mediates Ca reuptake into the sarcoplasmic reticulum (SR) during diastole, but its activity declines in failing hearts. DWORF (dwarf open reading frame), a newly identified cardiac microprotein, enhances SERCA2a activity and improves cardiomyocyte Ca cycling and contractility.
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