Department of Medical Biotechnology, Faculty of Biochemistry, Biophysics and Biotechnology, Jagiellonian University, 30-387, Kraków, Poland.
Pharmacol Rep. 2023 Apr;75(2):397-410. doi: 10.1007/s43440-023-00475-3. Epub 2023 Mar 15.
Impaired muscle regeneration is a hallmark of Duchenne muscular dystrophy (DMD), a neuromuscular disorder caused by mutations in the DMD gene encoding dystrophin. The lack of heme oxygenase-1 (HO-1, Hmox1), a known anti-inflammatory and cytoprotective enzyme, was shown to aggravate DMD pathology.
We evaluated the role of HO-1 overexpression in human induced pluripotent stem cell (hiPSC)-derived skeletal muscle cells (hiPSC-SkM) in vitro and in the regeneration process in vivo in wild-type mice. Furthermore, the effect of cobalt protoporphyrin IX (CoPP), a pharmacological inducer of HO-1 expression, on regeneration markers during myogenic hiPSC differentiation and progression of the dystrophic phenotype was analysed in the mdx mouse DMD model.
HO-1 has an impact on hiPSC-SkM generation by decreasing cell fusion capacity and the expression of myogenic regulatory factors and muscle-specific microRNAs (myomiRs). Also, strong induction of HO-1 by CoPP totally abolished hiPSC-SkM differentiation. Injection of HO-1-overexpressing hiPSC-SkM into the cardiotoxin (CTX)-injured muscle of immunodeficient wild-type mice was associated with decreased expression of miR-206 and Myh3 and lower number of regenerating fibers, suggesting some advanced regeneration. However, the very potent induction of HO-1 by CoPP did not exert any protective effect on necrosis, leukocyte infiltration, fibrosis, myofiber regeneration biomarkers, and exercise capacity of mdx mice.
In summary, HO-1 inhibits the expression of differentiation markers in human iPSC-derived myoblasts. Although moderate overexpression of HO-1 in the injected myoblast was associated with partially advanced muscle regeneration, the high systemic induction of HO-1 did not improve muscle regeneration. The appropriate threshold of HO-1 expression must be established for the therapeutic effect of HO-1 on muscle regeneration.
肌肉再生受损是杜氏肌营养不良症(DMD)的一个标志,这种神经肌肉疾病是由编码肌营养不良蛋白的 DMD 基因突变引起的。已知抗炎和细胞保护酶血红素加氧酶-1(HO-1,Hmox1)的缺乏会加重 DMD 病理。
我们评估了 HO-1 在人诱导多能干细胞(hiPSC)衍生的骨骼肌细胞(hiPSC-SkM)中的过表达在体外和在野生型小鼠体内的再生过程中的作用。此外,分析了血红素加氧酶-1 表达的药理学诱导剂钴原卟啉 IX(CoPP)对肌源性 hiPSC 分化过程中再生标志物的影响以及 mdx 小鼠 DMD 模型中肌营养不良表型的进展。
HO-1 通过降低细胞融合能力和肌生成调节因子和肌肉特异性 microRNAs(myomiRs)的表达对 hiPSC-SkM 的产生产生影响。此外,CoPP 对 HO-1 的强烈诱导完全阻止了 hiPSC-SkM 的分化。将过表达 HO-1 的 hiPSC-SkM 注射到免疫缺陷型野生型小鼠的心脏毒素(CTX)损伤肌肉中,与 miR-206 和 Myh3 的表达降低以及再生纤维数量减少有关,提示存在一些先进的再生。然而,CoPP 对 HO-1 的非常强烈诱导对 mdx 小鼠的坏死、白细胞浸润、纤维化、肌纤维再生生物标志物和运动能力没有任何保护作用。
总之,HO-1 抑制人 iPSC 衍生的成肌细胞中分化标志物的表达。尽管在注射的成肌细胞中适度过表达 HO-1 与部分先进的肌肉再生有关,但 HO-1 的全身性高诱导并未改善肌肉再生。必须确定 HO-1 表达的适当阈值,以实现 HO-1 对肌肉再生的治疗效果。