4.6 Article

Targeting cyclophilin-D by miR-1281 protects human macrophages from Mycobacterium tuberculosis-induced programmed necrosis and apoptosis

期刊

AGING-US
卷 11, 期 24, 页码 12661-12673

出版社

IMPACT JOURNALS LLC
DOI: 10.18632/aging.102593

关键词

Mycobacterium tuberculosis (MTB); macrophages; miR-1281; cyclophilin-D; programmed necrosis

资金

  1. Western Medicine Guide Project of STCSM [17411969300]
  2. China Tuberculosis Clinical Trial Consortium (CTCTC) Research Funding [2017KYJJ007]
  3. Clinical Research Plan of SHDC [16CR1028B]
  4. Clinical Key Discipline Construction Project of Shanghai Municipal Health Commission [2017ZZ02003]

向作者/读者索取更多资源

Mycobacterium tuberculosis (MTB) infection induces cytotoxicity to host human macrophages. The underlying signaling mechanisms are largely unknown. Here we discovered that MTB infection induced programmed necrosis in human macrophages, causing mitochondrial cyclophilin-D (CypD)-p53-adenine nucleotide translocator type 1 association, mitochondrial depolarization and lactate dehydrogenase medium release. In human macrophages MTB infection-induced programmed necrosis and apoptosis were largely attenuated by CypD inhibition (by cyclosporin A), silencing and knockout, but intensified with ectopic CypD overexpression. Further studies identified microRNA-1281 as a CypD-targeting miRNA. Ectopic overexpression of microRNA-1281 decreased CypD 3'-untranslated region activity and its expression, protecting human macrophages from MTB-induced programmed necrosis and apoptosis. Conversely, microRNA-1281 inhibition in human macrophages, by the antisense sequence, increased CypD expression and potentiated MTB-induced cytotoxicity. Importantly, in CypD-KO macrophages miR-1281 overexpression or inhibition was ineffective against MTB infection. Restoring CypD expression, by an untranslated region-depleted CypD construct, reversed miR-1281-induced cytoprotection against MTB in human macrophages. Collectively, these results show that targeting CypD by miR-1281 protects human macrophages from MTB-induced programmed necrosis and apoptosis.

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