Selective disruption of microtubule formation at the nuclear envelope impairs the bone resorption capacity of osteoclasts

  • J Cell Sci. 2025 Dec 8:jcs.264166. doi: 10.1242/jcs.264166.
Silvia Vergarajauregui  1 Samantha Panea  1 Jakob O Oltmanns  1 Ulrike Steffen  2 Felix B Engel  1
Affiliations
  • 1. Experimental Renal and Cardiovascular Research, Department of Nephropathology, Institute of Pathology and Department of Cardiology, Friedrich-Alexander-Universität Erlangen-Nürnberg (FAU), Kussmaulallee 12, 91054, Erlangen, Germany.
  • 2. Department of Internal Medicine 3 Rheumatology and Immunology, Friedrich-Alexander-University Erlangen-Nürnberg (FAU) and Universitätsklinikum Erlangen, Erlangen, Germany.
Abstract

Microtubule organization plays a central role in cell differentiation, orchestrating essential processes such as cell polarization, mechanotransduction, organelle positioning, and intracellular transport. A hallmark of many differentiated cells is the transition from a centrosomal to a non-centrosomal microtubule-organizing center (MTOC). Here, we demonstrate that both centrosomal and nuclear envelope (NE)-associated MTOCs coexist in osteoclasts. We show that the key players for NE-MTOC formation, AKAP6β and nesprin-1α, previously considered muscle-specific, are upregulated during osteoclast differentiation, suggesting a conserved role in NE-MTOC assembly across cell types. Targeted depletion of AKAP6 in RAW264.7-derived osteoclasts led to the displacement of the Golgi and MTOC-associated proteins PCM1, pericentrin, and CDK5RAP2 from the NE, while their centrosomal localization remained intact. This selectively impaired microtubule nucleation from the NE without disrupting centrosomal microtubule activity, enabling a functional dissection of the two MTOCs. Loss of NE-MTOC activity, by AKAP6 depletion, impaired podosome formation and significantly reduced bone resorption capacity, highlighting the distinct and essential role of NE-derived microtubules in osteoclast function.

Keywords
AKAP6β; Bone resorption; Microtubule-organizing center; Nesprin-1α; Osteoclast; Podosome.
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