MACF1 overexpression in BMSCs alleviates senile osteoporosis in mice through TCF4/miR-335-5p signaling pathway

Kewen Zhang1,2,3,4, Wuxia Qiu1,2,3,4,5, Hui Li6

  • 1Lab for Bone Metabolism, Xi'an Key Laboratory of Special Medicine and Health Engineering; Key Lab for Space Biosciences and Biotechnology, China.

Abstract

Insights

Microtubule actin crosslinking factor 1 (MACF1) enhances osteogenic differentiation in mesenchymal stem cells (MSCs), improving bone formation and microstructure. Targeting MACF1 offers a potential therapeutic strategy for osteoporosis (SOP).

Area of Science:

  • Molecular biology and cell signaling in bone metabolism.
  • Stem cell biology and differentiation.
  • Osteoporosis research and therapeutic targets.

Background:

  • Decreased osteogenic differentiation of mesenchymal stem cells (MSCs) contributes to osteoporosis (SOP).
  • Wnt signaling inhibition in MSCs is linked to SOP.
  • Microtubule actin crosslinking factor 1 (MACF1) regulates Wnt/β-catenin signaling, but its role in MSC-driven SOP is unclear.

Purpose of the Study:

  • To investigate the role of MACF1 in MSC osteogenic differentiation and bone formation in SOP.
  • To elucidate the underlying molecular mechanisms of MACF1 in regulating SOP.

Main Methods:

  • Established MACF1 conditional knock-in (MACF-KI) mice and ovariectomized (OVX) mouse models.
  • Utilized Micro-CT, H&E staining, calcein labeling, and biomechanical testing for bone analysis.
  • Employed bioinformatics, ChIP-PCR, qPCR, and ALP staining to explore MACF1's mechanism in MSCs.

Main Results:

  • MACF1 expression, along with Wnt pathway regulators, decreased in osteoporotic human MSCs.
  • MACF1-KI mice showed improved bone mineral density, microstructure, and mechanical strength with aging and OVX.
  • MACF1 regulates miR-335-5p expression via TCF4 during MSC osteogenic differentiation.

Conclusions:

  • MACF1 positively regulates MSC osteogenesis and bone formation through the TCF4/miR-335-5p pathway in SOP.
  • Targeting MACF1 presents a novel therapeutic approach for treating SOP and enhancing bone function.

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