Cigarette smoke-initiated autoimmunity facilitates sensitisation to elastin-induced COPD-Like pathologies in mice
EUROPEAN RESPIRATORY JOURNAL
Authors: Zhou, Jie-Sen; Li, Zhou-Yang; Xu, Xu-Chen; Zhao, Yun; Wang, Yong; Chen, Hai-Pin; Zhang, Min; Wu, Yin-Fang; Lai, Tian-Wen; Di, Chun-Hong; Dong, Ling-Ling; Liu, Juan; Xuan, Nan-Xia; Zhu, Chen; Wu, Yan-Ping; Huang, Hua-Qiong; Yan, Fu-Gui; Hua, Wen; Wang, Yi; Xiong, Wei-Ning; Qiu, Hui; Chen, Tao; Weng, Dong; Li, Hui-Ping; Zhou, Xiaobo; Wang, Lie; Liu, Fang; Lin, Xin; Ying, Song-Min; Li, Wen; Imamura, Mitsuru; Choi, Mary E.; Stampfli, Martin R.; Choi, Augustine M. K.; Chen, Zhi-Hua; Shen, Hua-Hao
Abstract
It is currently not understood whether cigarette smoke exposure facilitates sensitisation to self-antigens and whether ensuing auto-reactive T cells drive chronic obstructive pulmonary disease (COPD)-associated pathologies. To address this question, mice were exposed to cigarette smoke for 2 weeks. Following a 2-week period of rest, mice were challenged intratracheally with elastin for 3 days or 1 month. Rag1(-)(/-), Minp12(-)(/-), and Il17a(-/-) mice and neutralising antibodies against active elastin fragments were used for mechanistic investigations. Human GVAPGVGVAPGV/HLA-A*02:01 tetramer was synthesised to assess the presence of elastin-specific T cells in patients with COPD. We observed that 2 weeks of cigarette smoke exposure induced an elastin-specific T cell response that led to neutrophilic airway inflammation and mucus hyperproduction following elastin recall challenge. Repeated elastin challenge for 1 month resulted in airway remodelling, lung function decline and airspace enlargement. Elastin-specific T cell recall responses were dose dependent and memory lasted for over 6 months. Adoptive T cell transfer and studies in T cells deficient Rag1(-/-)mice conclusively implicated T cells in these processes. Mechanistically, cigarette smoke exposure-induced elastin-specific T cell responses were matrix metalloproteinase (MMP)12-dependent, while the ensuing immune inflammatory processes were interleukin 17A-driven. Anti-elastin antibodies and T cells specific for elastin peptides were increased in patients with COPD. These data demonstrate that MMP12-generated elastin fragments serve as a self-antigen and drive the cigarette smoke-induced autoimmune processes in mice that result in a bronchitis-like phenotype and airspace enlargement. The study provides proof of concept of cigarette smoke-induced autoimmune processes and may serve as a novel mouse model of COPD.
Genetic gateways to COVID-19 infection: Implications for risk, severity, and outcomes
FASEB JOURNAL
Authors: Debnath, Monojit; Banerjee, Moinak; Berk, Michael
Abstract
The dynamics, such as transmission, spatial epidemiology, and clinical course of Coronavirus Disease-2019 (COVID-19) have emerged as the most intriguing features and remain incompletely understood. The genetic landscape of an individual in particular, and a population in general seems to play a pivotal role in shaping the above COVID-19 dynamics. Considering the implications of host genes in the entry and replication of SARS-CoV-2 and in mounting the host immune response, it appears that multiple genes might be crucially involved in the above processes. Herein, we propose three potentially important genetic gateways to COVID-19 infection; these could explain at least in part the discrepancies of its spread, severity, and mortality. The variations within Angiotensin-converting enzyme 2 (ACE2) gene might constitute the first genetic gateway, influencing the spatial transmission dynamics of COVID-19. The Human Leukocyte Antigen locus, a master regulator of immunity against infection seems to be crucial in influencing susceptibility and severity of COVID-19 and can be the second genetic gateway. The genes regulating Toll-like receptor and complement pathways and subsequently cytokine storm induced exaggerated inflammatory pathways seem to underlie the severity of COVID-19, and such genes might represent the third genetic gateway. Host-pathogen interaction is a complex event and some additional genes might also contribute to the dynamics of COVID-19. Overall, these three genetic gateways proposed here might be the critical host determinants governing the risk, severity, and outcome of COVID-19. Genetic variations within these gateways could be key in influencing geographical discrepancies of COVID-19.