2019, Number 2
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Rev Cubana Neurol Neurocir 2019; 9 (2)
Lateralization hypothesis according to the association between topography of cerebral infarction and autonomic cardiac dysfunction after ischemic stroke
Guevara RM
Language: Spanish
References: 54
Page: 1-18
PDF size: 396.30 Kb.
ABSTRACT
Objective: To describe the association between topography of cerebral infarction and the appearance of cardiac autonomic dysfunction after an ischemic stroke.
Acquisition of evidence: A bibliographic search was conducted in Medline database from 2014 to 2018, using the English terms autonomic heart regulation or autonomic nervous system, ischemic stroke or cerebral infarction, cardiac autonomic dysfunction or heart rate variability (HRV), hypothesis of lateralization, insula, in English and Spanish. The search resulted in 48 original articles and two systematic reviews: a study on the neuroanatomic and physiological basis of cardiovascular autonomic control, three on the evaluation of heart rate variability. In addition 46 articles on the effects of cerebral infarction and its topography on cardiac autonomic function were found.
Results: The insular cortex is considered a center of cardiovascular autonomic integration. Significantly higher values of low frequency / high frequency ratio have been found in patients with right insular infarction. The prominent role of the right insula in the parasympathetic control of cardiac function explains why cerebral infarction in this region can lead to autonomic imbalance and positive regulation of sympathetic function.
Conclusions: The topography of cerebral infarction is associated with cardiac autonomic dysfunction after an ischemic stroke. Insular infarction is primarily responsible for the majority of autonomic cardiovascular disorders caused by an ischemic stroke. The findings on hemispheric lateralization for autonomic cardiovascular control are contradictory. However, most studies agree that right brain injuries are associated with sympathetic tone increase.
REFERENCES
Damasio A, Carvalho GB. The nature of feelings: Evolutionary and neurobiological origins. Nat Rev Neurosci. 2013 [citado: 05/03/2017];14(2):143-52. Disponible en: https://www.researchgate.net/profile/Gil_Carvalho/publication/234161523_OPINION_The_nature_of_feelings_evolutionary_and_neurobiological_origins/links/569581c508ae820ff074c699/OPINION-The-nature-of-feelings-evolutionary-and-neurobiological-origins.pdf
Kardon R. Anatomy and Physiology of the Autonomic Nervous System. Res Vestib Sci. 2017 [citado: 05/09/2018];16(4):101-7. Disponible en: https://collections.lib.utah.edu/details?id=190047
Struhal W, Javor A, Brunner C, Benesch T, Schmidt V, Vosko MR, et al. The phoenix from the ashes: Cardiovascular autonomic dysfunction in behavioral variant of frontotemporal dementia. J Alzheimers Dis. 2014 [citado: 05/03/2017];42(3):1041-6. Disponible en: https://www.doi:10.3233/JAD-140531
Zou R, Shi W, Tao J, Li H, Lin X, Yang S, et al. Neurocardiology: Cardiovascular changes and specific brain region infarcts. Biomed Res Int. 2017 Jul 3 [citado: 05/09/2018];2017(6):1-7. Disponible en: https://pdfs.semanticscholar.org/6159/777af4a72ec6840ffd69a22af3fb6978db90.pdf
Al-Qudah ZA, Yacoub HA, Souayah N. Disorders of the autonomic nervous system after hemispheric cerebrovascular disorders: an update. J Vasc Interv Neurol. 2015 Oct [citado: 05/09/2018];8(4):43-52. Disponible en: https://pdfs.semanticscholar.org/311e/51abd98c4c36516b6120e43a665f8a3dff84.pdf
Basantsova NY, Tibekina LM, Shishkin AN. A role of the autonomic nervous system in cerebro-cardiac disorders. Zh Nevrol Psikhiatr Im S S Korsakova. 2017 [citado: 06/03/2018];117(11):153-60. Disponible en: https://www.mediasphera.ru/issues/zhurnal-nevrologii-i-psikhiatrii-im-s-s-korsakova/2017/11/downloads/ru/1199772982017111153
Chen Z, Venkat P, Seyfried D, Chopp M1, Yan T, Chen J. Brain-Heart interaction: Cardiac complications after stroke. Circ Res. 2017 Aug 4 [citado: 22/11/2018];121(4):451-68. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5553569/pdf/nihms889287.pdf
Macefield VG, Henderson LA. "Real-time" imaging of cortical and subcortical sites of cardiovascular control: concurrent recordings of sympathetic nerve activity and fMRI in awake subjects. J Neurophysiol. 2016 Sep 1 [citado: 03/05/2018];116(3):1199-207. Disponible en: https://europepmc.org/articles/pmc5018056
Ghchime R, Benjelloun H, Kiai H, Belaidi H, Lahjouji F, Ouazzani R. Cerebral hemispheric lateralization associated with hippocampal sclerosis may affect interictal cardiovascular autonomic functions in temporal lobe epilepsy. Epilepsy Res Treat. 2016 [citado: 03/05/2018];2016:741-54. Disponible en: https://pdfs.semanticscholar.org/5f3a/2afb420de8a44066234d8b5c4faa32279532.pdf
Guo CC, Sturm VE, Zhou J, Gennatas ED, Trujillo AJ, Hua AY et al. Dominant hemisphere lateralization of cortical parasympathetic control as revealed by frontotemporal dementia. Proc Natl Acad Sci U S A. 2016 Apr 26 [citado: 03/05/2018];113(17):2430-9. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4855566/pdf/pnas.201509184.pdf
De Morree HM, Rutten GJ, Szabó BM, Sitskoorn MM, Kop WJ. Effects of insula resection on autonomic nervous system activity. J Neurosurg Anesthesiol. 2016 Abr [citado: 03/05/2018];28(2):153-8. Disponible en: https://doi.org/10.1097/ANA.0000000000000207
Shoemaker JK, Goswami R. Forebrain neurocircuitry associated with human reflex cardiovascular control. Front Physiol. 2015 [citado: 22/11/2018];6:240. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4555962/pdf/fphys-06-00240.pdf
Zygmunt A, Stanczyk J. Methods of evaluation of autonomic nervous system function. Arch Med Sci. 2010 Mar 1 [citado: 08/06/2017];6(1):11-8. Disponible en: https://www.researchgate.net/profile/Agnieszka_Zygmunt/publication/221867868_Methods_of_evaluation_of_autonomic_nervous_system_function/links/56878d2608ae051f9af57413.pdf
Peçanha T, Silva-Júnior ND, Forjaz CL. Heart rate recovery: autonomic determinants, methods of assessment and association with mortality and cardiovascular diseases. Clin Physiol Funct Imaging. 2014 Sep [citado: 08/06/2017];34(5):327-39. Disponible en: https://www.10.1111/cpf.12102
Reyes del Paso GA, Langewitz W, Mulder LJ, van Roon A, Duschek S. The utility of low frequency heart rate variability as an index of sympathetic cardiac tone: a review with emphasis on a reanalysis of previous studies. Psychophysiology. 2013 May [citado: 08/06/2017];50(5):477-87. Disponible en: https://forum.quantifiedself.com/uploads/default/original/2X/b/b9527e2951cb4f6a6db7828b99097428c230c364.pdf
Sörös P, Hachinski V. Wounded brain, ailing heart: Central autonomic network disruption in acute stroke. Ann Neurol. 2017 Apr [citado: 15/02/2019];81(4):495-7. Disponible en: https://doi.org/10.1002/ana.24911
Xiong L, Leung HH, Chen XY, Han JH, Leung TW, Soo YO, et al. Comprehensive assessment for autonomic dysfunction in different phases after ischemic stroke. Int J Stroke. 2013 Dec [citado: 08/06/2017];8(8):645-51. Disponible en: https://s3.amazonaws.com/academia.edu.documents/413781 14/Comprehensive_assessment_for_autonomic_d20160121-5152-difizh.pdf?AWSAccessKeyId=AKI AIWOWYYGZ2Y53UL3A&Expires=1558556271&Signature=OHrJSOSwET8alrqyWKm8P ish0y4% 3D&response-content-disposition=inline%3B%20filename%3DComprehensive_assessment_for_ autonomic_d.pdf
Constantinescu V, Matei D, Costache V, Cuciureanu D, Arsenescu-Georgescu C. Linear and nonlinear parameters of heart rate variability in ischemic stroke patients. Neurol Neurochir Pol [Internet]. 2018 [citado: 05/09/2018];52(2):194-206. Disponible en: https://journals.viamedica.pl/neurologia_neurochirurgia_polska/article/download/61333/46529
Zhang W, Cadilhac DA, Churilov L, Donnan GA, O'Callaghan C, Dewey HM. Does abnormal circadian blood pressure pattern really matter in patients with transient ischemic attack or minor stroke? Stroke. 2014 Mar [citado: 09/07/2018];45(3):865-7. Disponible en: https://www.ahajournals.org/doi/full/10.1161/STROKEAHA.113.004058
Xu YH, Wang XD, Yang JJ, Zhou L, Pan YC. Changes of deceleration and acceleration capacity of heart rate in patients with acute hemispheric ischemic stroke. Clin Interv Aging. 2016 Mar 11 [citado: 09/07/2018];11:293-8. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4795583/
Chen CF, Lin HF, Lin RT, Yang YH, Lai CL. Relationship between ischemic stroke location and autonomic cardiac function. J Clin Neurosci. 2013 [citado: 09/07/2018];20:406-9. Disponible en: https://www.ncbi.nlm.nih.gov/pubmed/23219823
Xiong L, Leung HW, Chen XY, Leung WH, Soo OY, Wong KS. Autonomic dysfunction in different subtypes of post-acute ischemic stroke. J Neurol Sci. 2014 Feb [citado: 09/07/2018];15;337(1-2):141-6. Disponible en: https://www.10.1016/j.jns.2013.11.036
Rokita AG, Anderson ME. New therapeutic targets in cardiology: arrhythmias and Ca2+/calmodulin-dependent kinase II (CaMKII). Circulation. 2012 [citado: 09/07/2018];126:2125-39. Disponible en: https://www.10.1161/CIRCULATIONAHA.112.124990
Shirokova N, Kang C, Fernandez-Tenorio M, Wang W, Wang Q, Wehrens XH, et al. Oxidative stress and Ca(2+) release events in mouse cardiomyocytes. Biophys J. 2014 [citado: 09/07/2018];107:2815-27. Disponible en: https://www.10.1016/j.bpj.2014.10.054
Habecker BA, Anderson ME, Birren SJ, Fukuda K, Herring N, Hoover DB, et al. Molecular and cellular neurocardiology: development, and cellular and molecular adaptations to heart disease. J Physiol. 2016 [citado: 09/07/2018];594:3853-75. Disponible en: https://www.10.1113/JP271840
Heath BM, Xia J, Dong E, An RH, Brooks A, Liang C, et al. Overexpression of nerve growth factor in the heart alters ion channel activity and beta-adrenergic signalling in an adult transgenic mouse. J Physiol. 1998 [citado: 09/07/2018];512(3):779–91. Disponible en: https://doi.org/10.1111/j.1469-7793.1998.779bd.x
Akil E, Tamam Y, Akil MA, Kaplan İ, Bilik MZ, Acar A, et al. Identifying autonomic nervous system dysfunction in acute cerebrovascular attack by assessments of heart rate variability and catecholamine levels. Neurosci Rural Pract. 2015 Apr-Jun [citado: 06/03/2018];6(2):145-50. Disponible en: https://www.10.4103/0976-3147.153216
Oppenheimer S. Cerebrogenic cardiopathy. Blood Heart Circ. 2017 [citado: 05/09/2018];1(2):1-11. Disponible en: https://pdfs.semanticscholar.org/25e0/175bec8c3c381de51b9d2f98658060339482.pdf
Bodapati RK, Kizer JR, Kop WJ, Kamel H, Stein PK. Addition of 24-Hour Heart Rate Variability Parameters to the Cardiovascular Health Study Stroke Risk Score and Prediction of Incident Stroke: The Cardiovascular Health Study. JACC Heart Fail. 2017 Jun [citado: 09/07/2018];5(6):423-31. Disponible en: https://www.10.1016/j.jchf.2016.12.015
Pereira VL, Dobre M, dos Santos SG, Fuzatti JS, Oliveira CR, Campos LA. Association between carotid intima media thickness and heart rate variability in adults at increased cardiovascular risk. Front Physiol. 2017 [citado: 09/07/2018];8:248. Disponible en: https://www.10.3389/fphys.2017.00248
Yperzeele L, van Hooff RJ, Nagels G, De Smedt A, De Keyser J, Brouns R. Heart rate variability and baroreceptor sensitivity in acute stroke: a systematic review. Int J Stroke. 2015 Aug [citado: 09/07/2018];10(6):796-800. Disponible en: https://www.10.1111/ijs.12573
Seifert F, Kallmünzer B, Gutjahr I, Breuer L, Winder K, Kaschka I, et al. Neuroanatomical correlates of severe cardiac arrhythmias in acute ischemic stroke. J Neurol. 2015 May 1 [citado: 05/09/2018];262(5):1182-90. Disponible en: https://link.springer.com/content/pdf/10.1007%2Fs00415-015-7684-9.pdf
Pasquini M, Laurent C, Kroumova M, Masse I, Deplanque D, Leclerc X, et al. Insular infarcts and electrocardiographic changes at admission: Results of the Prognostic of Insular Cerebral Infarcts Study (PRINCESS). J Neurol. 2006 [citado: 09/07/2018];253(5):618-24. Disponible en: https://www.10.1007/s00415-006-0070-x
Mochmann HC, Scheitz JF, Petzold GC, Haeusler KG, Audebert HJ, Laufs U, et al. TRELAS Study Group. Coronary Angiographic Findings in Acute Ischemic Stroke Patients with Elevated Cardiac Troponin: The Troponin Elevation in Acute Ischemic Stroke (TRELAS) Study. Circulation. 2016 [citado: 22/11/2018];133:1264-71. Disponible en: https://www.10.1161/CIRCULATIONAHA.115.018547
Choi HA, Jeon SB, Samuel S, Allison T, Lee K. Paroxysmal Sympathetic Hyperactivity After Acute Brain Injury. Curr Neurol Neurosci Rep. 2013 [citado: 22/11/2018];13(8):370. Disponible en: https://www.10.1007/s11910-013-0370-3
Porto I, Della Bona R, Leo A, Proietti R, Pieroni M, Caltagirone C, et al. Stress cardiomyopathy (tako-tsubo) triggered by nervous system diseases: A systematic review of the reported cases. Int J Cardiol [Internet]. 2013 [citado: 22/11/2018];167(6):2441-8. Disponible en: http://dx.doi.org/10.1016/j.ijcard.2013.01.031
Oppenheimer S, Cechetto D. The insular cortex and the regulation of cardiac function. Comprehensive Physiology. 2016 [citado: 09/07/2018];6(2):1081-133. Disponible en: https://doi.org/10.1002/cphy.c140076
Tahsili-Fahadan P, Geocadin RG. Heart-brain axis: effects of neurologic injury on cardiovascular function. Circulation research. 2017 Feb 3 [citado: 05/09/2018];120(3):559-72. Disponible en: https://www.ahajournals.org/doi/pdf/10.1161/CIRCRESAHA.116.308446
Oppenheimer SM, Cechetto DF. Cardiac chronotropic organization of the rat insular cortex. Brain Res. 1990 [citado: 05/09/2018];533:66-72. Disponible en: https://doi.org/10.1016/0006-8993(90)91796-J
Strittmatter M, Meyer S, Fischer C, Georg T, Schmitz B. Location-dependent patterns in cardio-autonomic dysfunction in ischaemic stroke. Eur Neurol. 2003 [citado: 03/05/2018];50(1):30-8. Disponible en: https://doi.org/10.1159/000070856
Colivicchi F, Bassi A, Santini M, Caltagirone C. Cardiac autonomic derangement and arrhythmias in right-sided stroke with insular involvement. Stroke. 2004 [citado: 09/07/2018];35:2094-8. Disponible en: https://doi.org/10.1161/01.STR.0000138452.81003.4c
Ay H, Koroshetz WJ, Benner T, Vangel MG, Melinosky C, Arsava EM, et al. Neuroanatomic correlates of stroke-related myocardial injury. Neurology. 2006 May [citado: 05/09/2018];66(9):1325-1329. Disponible en: https://www.10.1212/01.wnl.0000206077.13705.6d
Christensen H, Boysen G, Christensen AF, Johannesen HH. Insular lesions, ECG abnormalities, and in outcome in acute stroke. J Neurol Neurosurg Psychiatry. 2005 [citado: 09/0/7/2018];76(2):269-71. Disponible en: https://www.10.1136/jnnp.2004.037531
Constantinescu V, Matei D, Cuciureanu D, Corciova C, Ignat B, Popescu CD. Cortical modulation of cardiac autonomic activity in ischemic stroke patients. Acta Neurol Belg. 2016 Dec [citado: 09/07/2018];116(4):473-80. Disponible en: https://www.10.1007/s13760-016-0640-3
Sykora M, Diedler J, Turcani P, Hacke W, Steiner T. Baroreflex: a new therapeutic target in human stroke? Stroke. 2009 [citado: 09/07/2018];40:678-82. Disponible en: https://doi.org/10.1161/STROKEAHA.109.565838
Krause T, Werner K, Fiebach JB, Villringer K, Piper SK, Haeusler KG, et al. Stroke in right dorsal anterior insular cortex Is related to myocardial injury. Ann Neurol. 2017 Apr [citado: 12/02/2019];81(4):502-11. Disponible en: https://doi.org/10.1002/ana.24906
Kitamura J, Ueno H, Nagai M, Hosomi N, Honjo K, Nakamori M, et al. Blood Pressure Variability in Acute Ischemic Stroke: Influence of Infarct Location in the Insular Cortex. Eur Neurol. 2018 [citado: 12/02/2019];79(1-2):90-9. Disponible en: https://doi.org/10.1159/000486306
Haeusler KG, Grittner U, Fiebach JB, Endres M, Krause T, Nolte CH. Heart and Brain interfaces in Acute ischemic Stroke (HEBRAS)--rationale and design of a prospective observational cohort study. BMC Neurol. 2015 Oct 22 [citado: 12/02/2019];15:213. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4618534/pdf/12883_2015_Article_458.pdf
Billman GE. The LF/HF ratio does not accurately measure cardiac sympatho-vagal balance. Frontiers in physiology; 2013 Feb 20 [citado: 13/04/2019];4:26. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3576706/pdf/fphys-04-00026.pdf
Cohen M, Taylor JA. Short-term cardiovascular oscillations in man: measuring and modeling the physiologies. J Physiol. 2002 Aug 1 [citado: 13/04/2019];542(3):669-83. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2290446/pdf/tjp0542-0669.pdf
Houle MS, Billman GE. Low-frequency component of the heart rate variability spectrum: a poor marker of sympathetic activity. Am J Physiol; 1999 Jan [citado: 13/04/2019];276(1):H215-23. Disponible en: https://www.physiology.org/doi/pdf/10.1152/ajpheart.1999.276.1.H215
Eckberg DL, Mohanty SK., Raczkowska M. Trigeminal-baroreceptor reflex interactions modulate human cardiac vagal efferent activity. J Physiol (Lond). 1984 Feb [citado: 13/04/2019];347:75-83. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1199435/pdf/jphysiol00644-0086.pdf
Van De Borne P, Montano N, Narkiewicz K, Deguate JP, Mallani A, Pagani M, et al. Importance of ventilation in modulating interactions between sympathetic drive and cardiovascular variability. Am J Physiol Heart Circ Physiol. 2001 Feb [citado: 13/04/2019];280(2):H722-9. Disponible en: https://www.physiology.org/doi/pdf/10.1152/ajpheart.2001.280.2.H722
Bainbridge FA. The relation between respiration and the pulse-rate. J Physiol (Lond). 1920 Aug 23 [citado: 13/04/2019];54(3):192-202. Disponible en: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1405736/pdf/jphysiol01747-0064.pdf