key: cord-0740453-7elkqlvs authors: Courties, Alice; Boussier, Jeremy; Hadjadj, Jérôme; Yatim, Nader; Barnabei, Laura; Péré, Hélène; Veyer, David; Kernéis, Solen; Carlier, Nicolas; Pène, Frédéric; Rieux-Laucat, Frédéric; Charbit, Bruno; Bondet, Vincent; Duffy, Darragh; Berenbaum, Francis; Terrier, Benjamin; Sellam, Jérémie title: Regulation of the acetylcholine/α7nAChR anti-inflammatory pathway in COVID-19 patients date: 2021-06-04 journal: Sci Rep DOI: 10.1038/s41598-021-91417-7 sha: 1671dcd87a41640df2aee141f789b9bf2a005d7f doc_id: 740453 cord_uid: 7elkqlvs The cholinergic system has been proposed as a potential regulator of COVID-19-induced hypercytokinemia. We investigated whole-blood expression of cholinergic system members and correlated it with COVID-19 severity. Patients with confirmed SARS-CoV-2 infection and healthy aged-matched controls were included in this non-interventional study. A whole blood sample was drawn between 9–11 days after symptoms onset, and peripheral leukocyte phenotyping, cytokines measurement, RNA expression and plasma viral load were determined. Additionally, whole-blood expression of native alpha-7 nicotinic subunit and its negative dominant duplicate (CHRFAM7A), choline acetyltransferase and acetylcholine esterase (AchE) were determined. Thirty-seven patients with COVID-19 (10 moderate, 11 severe and 16 with critical disease) and 14 controls were included. Expression of CHRFAM7A was significantly lower in critical COVID-19 patients compared to controls. COVID-19 patients not expressing CHRFAM7A had higher levels of CRP, more extended pulmonary lesions and displayed more pronounced lymphopenia. COVID-19 patients without CHRFAM7A expression also showed increased TNF pathway expression in whole blood. AchE was also expressed in 30 COVID-19 patients and in all controls. COVID-19-induced hypercytokinemia is associated with decreased expression of the pro-inflammatory dominant negative duplicate CHRFAM7A. Expression of this duplicate might be considered before targeting the cholinergic system in COVID-19 with nicotine. www.nature.com/scientificreports/ A wide variety of regulatory mechanisms have been implicated in the pathophysiology of COVID-19 hyperinflammation. Among them, the role of the cholinergic system is evoked as a counter-regulatory mechanism. It was first proposed from the observation of a small proportion of smokers among patients with symptomatic COVID-19 suggesting a potential protective role of nicotine in COVID-19 6 . Since early 2000s, animal and experimental models have shown that the cholinergic system and the parasympathetic vagus nerve reduced cytokine production 7, 8 . This phenomenon involves binding of acetylcholine (Ach) to acetylcholine receptor type 7 (α7nAChR), one of the nicotinic receptors expressed on macrophages 9 . Activation of the NF-κB pathway and production of pro-inflammatory cytokines (especially TNF, IL-1β, IL-6 and IL-18) are inhibited by the binding of Ach (or nicotine) to α7nAChR [8] [9] [10] . This cholinergic anti-inflammatory pathway (CAP) thus represents a neuroimmune target in chronic inflammatory diseases [11] [12] [13] [14] [15] . Some authors have suggested that activation of cholinergic system through α7nAChR activation, using electrical vagus nerve stimulation or exogenous α7nAChR ligand exposure (such as nicotine or pharmacological compounds) could represent innovative therapeutic strategies to limit COVID-19-induced hypercytokinemia 6, [16] [17] [18] [19] . However, to date, while cholinergic system manipulation is being evaluated in COVID-19 patients, data on its expression and regulation during COVID-19 are scarce and restricted to infectivity of airway epithelial cells, as nicotine could promote cellular entrance of SARS-CoV-2 through α7nAChR mechanisms 20 . Before targeting the cholinergic system in COVID-19 patients, it is critical to determine the expression of the components of the cholinergic system in COVID-19 patients. Hence, we aimed to investigate whole-blood expression of cholinergic system members and correlated it with COVID-19 severity and cytokine expression using an integrated immune analysis on a cohort of patients with COVID-19 healthy aged-matched controls 21 . Characteristics of the population. Thirty-seven patients infected by SARS-CoV-2 and 14 healthy controls (HC) were included (Table 1) . Patients with critical COVID-19 were older and had more comorbidities such as hypertension, diabetes and/or cardiovascular diseases in comparison with patients with moderate COVID-19 patients or controls 21 . Additionally, CRP levels and viral load increased with the severity of the disease while lymphocyte counts decreased. Only one COVID-19 patient was an active smoker. Blood sampling To further study the relationship between the whole-blood expression of CHRFAM7A and disease severity, we compared COVID-19 patients expressing (n = 21) and those not expressing CHRFAM7A (n = 16). Despite a younger age, COVID-19 patients not expressing CHRFAM7A subunit showed features related to more severe disease, including higher level of C-reactive protein (p = 0.04) and more pronounced lymphopenia (p = 0.05 for total lymphocyte, p = 0.03 for % live lymphocytes) ( Table 2 ). The proportion of critical patients within the group of patients that did not express CHRFAM7A was higher than in those that expressed CHRFAM7A (50% versus 38.1%) but the difference did not reach statistical significance. However, we observed a trend of a higher proportion of patients with extension pulmonary lesions (> 25%) in the CT-Scan in patients with no expression of CHRFAM7A compared to those expressing CHRFAM7A (73.3% versus 44.4% respectively, p = 0.09). IL6 were previously shown to be among the master cytokines involved in COVID-19 related hyperinflammation. Therefore, we analyzed the relationship between expressed members of the cholinergic system and TNF and IL6 mRNA and protein expressions. CHRFAM7A expression correlated with mRNA TNF expression (r = 0.53, p = 0.054) in healthy controls, while in COVID-19 patients such a CHRFAM7A/TNF correlation was not observed (r = 0.02, p = 0.9) ( Fig. 2A,B) . However, there was no correlation between mRNA CHRFAM7A and TNF protein expression assessed by digital ELISA in COVID-19 as well as in HC subjects. IL6 mRNA and protein expression did not correlate with CHRFAM7A mRNA expression in both COVID-19 and HC (data not shown). We observed that TNF and IL6 mRNA levels did not correlate with TNF and IL6 protein levels respectively, suggesting that cytokines are coming from infected tissues rather than blood cells which may explain why CHRFAM7A did not correlate with ELISA cytokines levels. www.nature.com/scientificreports/ Molecular signature associated with CHRFAM7A expression in COVID-19 patients. We analyzed whole-blood RNA levels of 574 genes using the Nanostring technology to determine gene expression differences between COVID-19 patients expressing or not CHRFAM7A. Gene set enrichment analysis identified several significantly enriched pathways (Fig. 3A , GSEA enrichment score with false discovery rate < 0.2), with increased gene expression in CHRFAM7A− compared to CHRFAM7A+ patients. The most enriched pathway was TNF family signaling. Heatmap analysis revealed that the difference between the groups was mostly mediated by the moderate group, and to a lesser extent by the severe group (Fig. 3B ). Since observational data suggested that the cholinergic system could be involved in COVID-19-related hypercytokinemia and hyperinflammation, we investigated whole-blood expression of the main markers of the Ach/ α7nAChR pathway in COVID-19. We found that CHRFAM7A expression was decreased in COVID-19 patients, whereas most controls expressed the dominant negative CHRFAM7A duplicate. Also, this decrease was related to disease severity of the infection. Absence of CHRFAM7A expression in COVID-19 patients was associated with some increased inflammatory biological markers and COVID-19 severity (lymphopenia, elevated CRP, elevated plasma viral www.nature.com/scientificreports/ load) with extension of the pulmonary lesions and with enhanced expression of genes of the TNF signaling pathway. These results suggest that during COVID19-related hypercytokinemia, decrease of the pro-inflammatory duplicate CHRFAM7A could be proposed as a compensatory process to counteract the inappropriate inflammatory response. This may also explain why TNF levels positively correlated with CHRFAM7A in controls but not in COVID-19 patients. The loss of this correlation could be a consequence of the dysregulation of the control of cholinergic system during inflammation. As shown by the heatmap analysis, the association between the absence of CHFRAM7A expression and the increase in TNF signaling pathway was observed for patients with moderate and severe COVID-19 patients but not for those with critical disease. If we hypothesize that the decrease or absence of CHRFAM7A is a compensatory mechanism to make the produced ACh more efficient, it is possible that this mechanism is exceeded in overly severe patients. Of course, we cannot make a causal link or confirm the compensatory aspect of expression because only one sample per patient at one time point was available. Longitudinal analysis will be required to fully understand modulation of the cholinergic system during COVID-19. Another explanation could be that patient with intrinsic decreased or absence of CHRFAM7A expression have higher risk to develop a symptomatic and severe COVID-19. Additionally, we found that AchE was expressed by almost all controls and patients. The enzymatic activity of AchE might be important to evaluate before manipulating the cholinergic system in COVID-19 patients. We did not find any significant expression of the native Chrna7 subunit, which was not surprising since the expression of the native Chrna7 subunit is mostly present in the neuronal system and resident cells and much less in the non-neuronal system, especially in the circulating cells 22, 23 . ChAT expression was not detectable either in whole-blood RNA, which could be due to the method of detection since we analyzed whole-blood expression and not specific expression after cell sorting. Although these results are observational and cannot testify for a causal relationship, they provide elements for further discussion about cholinergic system manipulation in COVID-19. While clinical trials investigating the efficacy of vagus nerve stimulation or nicotine administration in COVID-19 for cholinergic anti-inflammatory pathway activation are ongoing, the impact of the expression of the dominant negative duplicate CHRFAM7A has never been considered. Yet, this duplicate has been implicated for explaining the previous failures of pharmacological α7 nicotinic receptor agonists in neurocognitive diseases, while murine studies were clearly encouraging 24 . Knowing that trials are underway to evaluate the usefulness of nicotine on the risk of developing a SARS-CoV-2 infection and severe COVID-19, it seems critical to address the influence of the dominant negative duplicate CHRFAM7A expression on the nicotine response. Finally, this work has some limitations. Unfortunately, we do not have longitudinal samples to demonstrate whether regulation is related to the disease state and we did not performed heart rate variability measurement using a long-electrocardiogram to characterize the vagal tone in these patients 25 . However, comparison of COVID-19 patients accurately phenotyped with controls may provide some indications about biological cholinergic disturbances induced by the disease. We found a difference in age between subjects expressing and those not expressing CHRFAM7A, which could have influenced the inflammatory markers, age being a determining factor of severity. However, this difference was in the opposite direction since patients not expressing CHRFAM7A were younger while they exhibited more features of disease severity. Second, it would be interesting to confirm these data in tissues damaged by COVID-19 such as the lung. However, blood leukocytes are crucial in the anti-inflammatory signal induced by the cholinergic anti-inflammatory pathway and blood seems appropriate to investigate hypercytokinemia which is a systemic phenomenon. It would also be interesting to study in vitro the monocytic and lymphocytic regulation of the expression of the CHRFAM7A duplicate by inflammatory cytokines. www.nature.com/scientificreports/ In conclusion, COVID-19-related hypercytokinemia shows some correlations with regulation of the Ach/ α7nAChR pathway characterized by a decreased expression of the pro-inflammatory dominant negative duplicate CHRFAM7A. The expression of this duplicate should be considered in clinical trials evaluating therapeutic strategies manipulating the cholinergic system in COVID-19 such as nicotine. Study population. This study is derived from another study that evaluated immune response in 50 COVID-19 patients with various disease severity 21 . Briefly, this non-interventional study was conducted between March 19, 2020 and April 3, 2020 in Cochin Hospital (Paris, France) to explore molecular signature associated with COVID-19 severity. Adult patients with COVID-19 according to WHO interim guidance, and positive SARS-CoV-2 RT-PCR testing on a respiratory sample (nasopharyngeal swab or invasive respiratory sample) were included. Inpatients with preexisting unstable chronic disorders and with bacterial co-infection were excluded. Healthy controls (HC) were asymptomatic adults, matched with cases on age (± 5 years), with a negative nasal SARS-CoV-2 RT-PCR testing at time of inclusion. Biological collection and informed consent were approved by the Direction de la Recherche Clinique et Innovation (DRCI) and the French Ministry of Research (N°2019-3677). The study conforms to the principles outlined in the Declaration of Helsinki and received approval by the appropriate Institutional Review Board (Cochin Port Royal Hospital, Paris, France; number AAA-2020-08018). Demographic, clinical, biological, CT-scan data were extracted from the electronical medical files. The severity of COVID-19 was classified at the time of admission based on the adaptation of the Sixth Revised Trial Version of the Novel Coronavirus Pneumonia Diagnosis and Treatment Guidance between moderate, severe or critical. . Pathway enrichment analysis between COVID-19 patients according to the expression of CHRFAM7A, the negative dominant duplicate of the alpha 7 nicotinic subunit. RNA was extracted from patient whole blood and RNA counts of 574 genes were determined by means of direct probe hybridization, using the Nanostring nCounter Human Immunology_v2 kit. (A) Gene set enrichment analysis was performed after ranking genes according to their differential expression in CHRFAM7A+ versus CHRFAM7A− patients. Shown are pathways significantly enriched (false discovery rate < 0.2). (B) Heatmap showing expression of 20 most differentially expressed TNF-related genes in patients with mild-to-moderate (n = 8), severe (n = 8), and critical (n = 11) SARS-CoV-2 infection according to their positive or negative expression of CHRFAM7A. Up-regulated genes are shown in red, and down-regulated genes in blue. www.nature.com/scientificreports/ Clinical characteristics of coronavirus disease 2019 in China COVID-19: Consider cytokine storm syndromes and immunosuppression Increased interleukin-6 and macrophage chemoattractant protein-1 are associated with respiratory failure in COVID-19 Analysis of the clinical characteristics of 77 COVID-19 deaths Clinical characteristics and predictors of mortality associated with COVID-19 in elderly patients from a long-term care facility A nicotinic hypothesis for Covid-19 with preventive and therapeutic implications Neurons are the inflammatory problem Vagus nerve stimulation attenuates the systemic inflammatory response to endotoxin Nicotinic acetylcholine receptor alpha7 subunit is an essential regulator of inflammation Vagus nerve stimulation inhibits cytokine production and attenuates disease severity in rheumatoid arthritis Clearing method for 3-dimensional immunofluorescence of osteoarthritic subchondral human bone reveals peripheral cholinergic nerves Safety and efficacy of neurostimulation with a miniaturised vagus nerve stimulation device in patients with multidrug-refractory rheumatoid arthritis: A two-stage multicentre, randomised pilot study Transcutaneous auricular vagus nerve stimulation reduces pain and fatigue in patients with systemic lupus erythematosus: A randomised, double-blind, sham-controlled pilot trial Chronic vagus nerve stimulation in Crohn's disease: A 6-month follow-up pilot study The role of the non-neuronal cholinergic system in inflammation and degradation processes in osteoarthritis Editorial: Nicotine and SARS-CoV-2: COVID-19 may be a disease of the nicotinic cholinergic system The cholinergic anti-inflammatory pathway alleviates acute lung injury Cytokine release syndrome (CRS) and nicotine in COVID-19 patients: Trying to calm the storm Targeting the cholinergic anti-inflammatory pathway with vagus nerve stimulation in patients with Covid-19? COVID-19 and smoking: is nicotine the hidden link? Impaired type I interferon activity and inflammatory responses in severe COVID-19 patients A human-specific α7-nicotinic acetylcholine receptor gene in human leukocytes: Identification, regulation and the consequences of CHRFAM7A expression Expression of an alpha7 duplicate nicotinic acetylcholine receptor-related protein in human leukocytes CHRFAM7A: A human specific fusion gene, accounts for the translational gap for cholinergic strategies in Alzheimer's disease Heart rate variability and its sympatho-vagal modulation We acknowledge all health care workers involved in the diagnosis and treatment of patients in Cochin Hospital, especially C. Azoulay, L. Beaudeau, E. Canoui, P. Cohen, A. Contejean, B. Dunogué, D. Journois, P. Legendre, J. Marey, and A. Régent. We thank Y. Gaudin for his advices on viral mechanism. We thank all the patients and supporters for their confidence in our work. We thank Uwe Maskos (Pasteur Institute) for the initial discussion about the role of FAM7A in inflammatory response. A.C., J.B., J.H., N.Y., L.B., B.T., J.S. have made substantial contributions to the conception, the design of the work; the acquisition of data, analysis, and the interpretation of data. H.P., D.V., S.K., N.C., F.P., F.R.L., B.C., V.B., D.D., F.B. have made substantial contributions to the acquisition, analysis and interpretation of data. All authors reviewed the manuscript. This study was supported by the Fonds IMMUNOV, for Innovation in Immunopathology. The study was also supported by the Institut National de la Santé et de la Recherche Médicale (INSERM) and the Institut Pasteur, by a government grant managed by the Agence National de la Recherche as part of the "Investment for the Future" program (ANR-10-IAHU-01 and the Laboratoire d'Excellence ''Milieu Intérieur", grant ANR-10-LABX-69-01), by a grant from the Agence National de la Recherche (ANR-flash Covid19 "AIROCovid" to FRL and "CoVarImm" The authors declare no competing interests. Correspondence and requests for materials should be addressed to J.S. 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