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Microbes & Immunity                                          Benefit of noninvasive VNS in vaccine optimization



            17.  Yokota H, Edama M, Hirabayashi R, et al. Effects of stimulus   among children. JAMA Netw Open. 2021;4(6):e2111182.
               frequency, intensity, and sex on the autonomic response      doi: 10.1001/jamanetworkopen.2021.11182
               to  transcutaneous  vagus nerve stimulation.  Brain Sci.
               2022;12(8):1038.                                27.  Mol MBA, Strous MTA, van Osch FHM, et al. Heart-rate-
                                                                  variability (HRV), predicts outcomes in COVID-19. PLoS
               doi: 10.3390/brainsci12081038
                                                                  One. 2021;16(10):e0258841.
            18.  Carandina A, Rodrigues GD, Di Francesco P, et al. Effects      doi: 10.1371/journal.pone.0258841
               of transcutaneous  auricular vagus  nerve stimulation  on
               cardiovascular autonomic control in health and disease.   28.  Viljoen M, Claassen N. Allostatic load and heart rate
               Auton Neurosci. 2021;236:102893.                   variability as health risk indicators.  Afr Health Sci.
                                                                  2017;17(2):428-435.
               doi: 10.1016/j.autneu.2021.102893
                                                                  doi: 10.4314/ahs.v17i2.17
            19.  Jensen MK, Andersen SS, Andersen SS, Liboriussen  CH,
               Kristensen S, Jochumsen M. modulating heart rate   29.  Silva AKF, Christofaro DGD, Bernardo AFB, Vanderlei FM,
               variability through deep breathing exercises and   Vanderlei LCM. Sensitivity, specificity and predictive value
               transcutaneous auricular vagus nerve stimulation: A study   of heart rate variability indices in type 1 diabetes mellitus.
               in  healthy  participants  and  in  patients  with  rheumatoid   Arq Bras Cardiol. 2017;108(3):255-262.
               arthritis or systemic lupus erythematosus. Sensors (Basel).      doi: 10.5935/abc.20170024
               2022;22(20):7884.
                                                               30.  Banerjee A, Singh N,  Raju A, Gupta R. Central markers
               doi: 10.3390/s22207884                             of obesity affect heart rate variability independent of
            20.  Sloan RP, Cole SW. Parasympathetic neural activity and the   physical activity in young adults. J Family Med Prim Care.
               reciprocal regulation of innate antiviral and inflammatory   2022;11(6):2521.
               genes in the human immune system. Brain Behav Immun.      doi: 10.4103/jfmpc.jfmpc_1970_21
               2021;98:251256.
                                                               31.  Thayer JF, Yamamoto SS, Brosschot JF. The relationship
               doi: 10.1016/j.bbi.2021.08.217
                                                                  of autonomic imbalance, heart rate variability and
            21.  Ghazaly M, Nadel S. Characteristics of children admitted   cardiovascular disease  risk factors.  Int  J Cardiol.
               to intensive care with acute bronchiolitis.  Eur J Pediatr.   2010;141(2):122131.
               2018;177(6):913920.
                                                                  doi: 10.1016/j.ijcard.2009.09.543
               doi: 10.1007/s00431-018-3138-6
                                                               32.  Mulkey SB, Govindan R, Metzler M,  et al. Heart rate
            22.  Wildenbeest JG, Billard MN, Zuurbier RP, et al. The burden   variability is depressed in the early transitional period for
               of respiratory syncytial virus in healthy term-born infants   newborns with  complex  congenital heart disease.  Clin
               in Europe: A prospective birth cohort study. Lancet Respir   Auton Res. 2020;30(2):165172.
               Med. 2022;11(4):341-353.
                                                                  doi: 10.1007/s10286-019-00616-w
               doi: 10.1016/S2213-2600(22)00414-3
                                                               33.  Javorka K, Lehotska Z, Kozar M, et al. Heart rate variability
            23.  Stock  C,  Teyssier  G,  Pichot  V,  Goffaux  P,  Barthelemy  JC,   in newborns. Physiol Res. 2017;S203S214.
               Patural H. Autonomic dysfunction with early respiratory      doi: 10.33549/physiolres.933676
               syncytial  virus-related  infection.  Auton  Neurosci.
               2010;156(12):9095.                              34.  Scala I, Rizzo PA, Bellavia S, et al. Autonomic dysfunction
                                                                  during acute SARS-CoV-2 infection: A systematic review.
               doi: 10.1016/j.autneu.2010.03.012
                                                                  J Clin Med. 2022;11(13):3883.
            24.  Vismara L, Gianmaria Tarantino A, Bergna A, et al.      doi: 10.3390/jcm11133883
               Correlation between diminished vagal tone and somatic
               dysfunction severity in very and extremely low birth   35.  Bonaz B, Sinniger V, Pellissier S. Targeting the cholinergic
               weight preterm infants assessed with frequency spectrum   anti-inflammatory pathway with vagus nerve stimulation in
               heart rate variability and salivary cortisol.  Medicine.   patients with Covid-19? Bioelectron Med. 2020;6(1):15.
               2022;101(38):e30565.
                                                                  doi: 10.1186/s42234-020-00051-7
               doi: 10.1097/MD.0000000000030565
                                                               36.  Mehranfard D, Speth RC. Cholinergic anti-inflammatory
            25.  Milani GP, Bollati V, Ruggiero L,  et al. Bronchiolitis and   pathway and COVID-19. Bioimpacts. 2022;12(2):171174.
               SARS-CoV-2. Arch Dis Child. 2021;106(10):9991001.     doi: 10.34172/bi.2022.23980
               doi: 10.1136/archdischild-2020-321108
                                                               37.  Hajiasgharzadeh K, Jafarlou M, Mansoori B, Dastmalchi N,
            26.  Kompaniyets L, Agathis NT, Nelson JM, et al. Underlying   Baradaran B, Khabbazi A. Inflammatory reflex disruption in
               medical conditions associated with severe COVID-19 illness   COVID ‐19. Clin Exp Neuroimmunol. 2022;13(4):295301.


            Volume 1 Issue 1 (2024)                         56                               doi: 10.36922/mi.2598
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