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Excess muscle plasma membrane leak disrupts ECM content and shifts macrophage-mediated muscle repair
GaHyun Lee, Alexander J. Fitt, Ashlee M. Long, Lauren A. Vaught, Dorothy DeBiasse, Alexander R. Keeble, Jason M. Kwon, Patrick G.T. Page, Marie-Therese Daher, Michele Hadhazy, Alexander B. Willis, David Ceja Galindo, Maxwell McCabe, Connor Lantz, Kirk C. Hansen, Rachelle H. Crosbie, Edward B. Thorp, Alexis R. Demonbreun, Elizabeth M. McNally
GaHyun Lee, Alexander J. Fitt, Ashlee M. Long, Lauren A. Vaught, Dorothy DeBiasse, Alexander R. Keeble, Jason M. Kwon, Patrick G.T. Page, Marie-Therese Daher, Michele Hadhazy, Alexander B. Willis, David Ceja Galindo, Maxwell McCabe, Connor Lantz, Kirk C. Hansen, Rachelle H. Crosbie, Edward B. Thorp, Alexis R. Demonbreun, Elizabeth M. McNally
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Research Article Inflammation Muscle biology

Excess muscle plasma membrane leak disrupts ECM content and shifts macrophage-mediated muscle repair

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Abstract

Plasma membrane repair is critical for tissue integrity, especially for elongated contractile muscle cells. Genetically mediated defects in plasma membrane resealing produce persistent leak, leading to a disordered extracellular matrix (ECM). Loss of the membrane repair protein dysferlin slows sarcolemmal resealing and promotes excess leak. Annexin A6 is also implicated in sarcolemmal repair, forming repair caps at the site of membrane disruption. On its own, deletion of the gene for annexin A6, Anxa6, had little effect on muscle health. In contrast, combined loss of dysferlin and annexin A6 (DysfA6) generated muscle fibers with profoundly defective membrane leak. Strikingly, Anxa6 deletion in the context of loss of dystrophin (mdxA6) did not exacerbate muscle defects. The persistent membrane leak in DysfA6 muscle resulted in marked macrophage infiltration with disordered macrophage polarization. Injured muscle fibers were targets of macrophage efferocytosis. Loss of Anxa6 was associated with increased expression of annexins A1 and A2, both of which were heavily deposited into the ECM. In vitro, macrophages exposed to annexins A1 and A2 increased Csf1 expression, consistent with a model where excess leak results in annexins A1 and A2 in the ECM, where this protein composition influences macrophage proliferation and efferocytosis.

Authors

GaHyun Lee, Alexander J. Fitt, Ashlee M. Long, Lauren A. Vaught, Dorothy DeBiasse, Alexander R. Keeble, Jason M. Kwon, Patrick G.T. Page, Marie-Therese Daher, Michele Hadhazy, Alexander B. Willis, David Ceja Galindo, Maxwell McCabe, Connor Lantz, Kirk C. Hansen, Rachelle H. Crosbie, Edward B. Thorp, Alexis R. Demonbreun, Elizabeth M. McNally

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Figure 8

Elevated ANXA1 and ANXA2 expression in DysfA6 ECM promotes expression of Csf1 in macrophages.

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Elevated ANXA1 and ANXA2 expression in DysfA6 ECM promotes expression of...
(A) Muscle cryosections (25 μm) were decellularized, incubated with WT macrophages, and imaged after 24 hours. Z-stack images were acquired and the percentage of macrophages localized on the ECM relative to the total macrophages on the ECM and glass was calculated. More macrophages (F4/80, red) accumulated on Dysf and DysfA6 myoscaffolds compared with WT (n = 3 mice per genotype denoted by color, 2 myoscaffolds per mouse). Macrophages were derived from 3 WT mice, denoted by symbol shapes. (B) WT macrophages exposed to Dysf and DysfA6 myoscaffolds adopted a distinct morphology compared with WT myoscaffolds, with greater increased circularity (arrowhead) induced by Dysf and DysfA6 (n = 3 mice per genotype, 2 myoscaffolds per animal, and 3 images per myoscaffold). Full arrows indicate macrophages with more elongated morphology. (C) Recombinant ANX1 (rANXA1), rANXA2, or combined treatment of macrophages elicited Csf1 expression (macrophages isolated from 3 mice, denoted by symbols, with technical replicates). (D) DysfA6 receptor-ligand gene expression analysis with CellChat revealed that Mertk+Trem2+ macrophages signal to FAPs via GAS6, while FAPs signal to macrophages via PROS1 and GAS6. (E) Prolonged sarcolemmal leak due to impaired membrane repair increased ANXA1 and ANXA2 ECM deposition, recruiting macrophages to the area of leak and promoting macrophage-FAP crosstalk. All the experiments were conducted 3 independent times. **P < 0.01; ***P < 0.005; ****P < 0.001 by 1-way ANOVA followed by Tukey’s multiple comparisons test. Scale bars: 100 μm (A) and 50 μm (B).

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