Neuro-vascular Reserve in Developing Snug and Fit Buildup
Source: By:Yu Edwin Chau-Leung
DOI: https://doi.org/10.30564/jim.v10i2.3636
Abstract:The body is observed to function optimally in life in some individuals while others have various problems. In the complexity involved, this paper describes saliently the mechanisms for biological robustness from birth and subsequent neuro-vascular and core matching patterns well-coordinated till adulthood. These mechanisms as the individual develops and maintains his core to keep vitality against environmental perturbations and they can be dysfunctional. The three related dimensions of the fascial organization, the co-directed nervous and perfusional elements in the body are emphasized. Re-understanding of these mechanisms in the body-map can be useful to revise the basis for re-defining our therapies
References:[1] Schoenwolf GC. (2002). J Musculoskelet Neuronal Interact. 2(3):268-9. [2] Hashimoto, M., Morita, H., and Ueno, N. (2014). Molecular and cellular mechanisms of development underlying congenital diseases. Congenit Anom (Kyoto).54(1):1-7. doi: 10.1111/cga.12039. [3] Kurosaka Satoshi, Kashina Anna (2008) Cell biology of embryonic migration. Birth Defects Res Part C Embryo Today Rev 84(2):102–122 [4] Shahbazi MN. (2020).Mechanisms of human embryo development: from cell fate to tissue shape and back Development (2020) 147, dev190629. doi:10.1242/dev.190629 [5] Keogh Michael B, O’Brien Fergal J, Daly Jacqueline S (2010) Substrate stiffness and contractile behavior modulate the functional maturation of osteoblasts on a collagen–gag scaffold. Acta Biomaterialia 11(6):4305–4313 [6] Murphy Ciara M, Matsiko Amos, Haugh Matthew G, Gleeson John P, O’Brien Fergal J (2012) Mesenchymal stem cell fate is regulated by the composition and mechanical properties of collagen– glycosaminoglycan scaffolds. J Mech Behav Biomed Mater 11:53–62 [7] Yu ECL (2021) From Core and Mantle to Primary Integrality - A Brief Introduction of the Fit and Snug States. J Altern Complement Integr Med 7: 177. [8] Genuth, MA and Holley SA. (2020). Mechanics as a Means of Information Propagation in Development. Bioessays. DOI: 10.1002/bies.202000121 [9] Das, D; Julich, D; Schwendinger-Schreck, J; Guillon, E; Lawton, AK; Dray, N; Emonet, T; et al. (2019) Organization of Embryonic Morphogenesis via Mechanical Information. Dev Cell. 17;49(6):829-839.e5. doi: 10.1016/j.devcel.2019.05. [10] Dzamba BJ, DeSimone DW. Extracellular Matrix (ECM) and the Sculpting of Embryonic Tissues. Curr Top Dev Biol. (2018);130:245-274. doi: 10.1016/bs.ctdb.(2018).03.006. [11] Whitacre JM. (2012). Biological robustness: paradigms, mechanisms, and systems principles. Front Genet. 11;3:67. doi: 10.3389/fgene.2012.00067 [12] Sokac AM. Mechanical Networks Have Robustness Built into Their Topology, Too. (2019). Developmental cell 50 (5), 527-528. [13] Love, A.C., (2017), “Developmental mechanisms”, in The Routledge Handbook of the Philosophy of Mechanisms and Mechanical Philosophy, S. Glennan and P. Illari (eds.), 332–347, New York: Routledge. [14] Davidson LA. (2017) Mechanical design in embryos: mechanical signaling, robustness and developmental defects. Phil. Trans. R. Soc. B 372: (2015).0516. http://dx.doi.org/10.1098/rstb.(2015).0516 [15] Larrivee B, Freitas C, Suchting S, Brunet I, Eichmann A (2009).Guidance of vascular development: lessons from the nervous system. Circ Res 104:428–441. [16] Adams H, Eichmann A. Axon guidance molecules in vascular patterning. Cold Spring Harb Perspect Biol. (2010); 2(5): a001875. doi: 10.1101/cshperspect.a001875. [17] Clark, E.R. (1918). Studies in the growth of blood vessels in the tail of the frog larva. Am. J. Anat. 23: 37-88. [18] Speidel, C.C. (1933). Studies of living nerves. II. Activities of ameboid growth cones, sheath cells, and myelin segments, as revealed by prolonged observation of individual nerve fibers in frog tadpoles. Am. J. Anat. 52: 1-79. [19] Virgintino, D., Girolamo, F., Errede, M., Capobianco, C., Robertson, D., Stallcup, W. B., et al. (2007). An intimate interplay between precocious, migrating pericytes and endothelial cells governs human fetal brain angiogenesis. Angiogenesis 10, 35–45. doi: 10.1007/s10456-006-9061-x [20] Hogan KA, Ambler CA, Chapman DL, Bautch VL. The neural tube patterns vessels developmentally using the VEGF signaling pathway. Development. (2004);131:1503–1513. [21] Dupin E, Real C, Ledouarin N. The neural crest stem cells: control of neural crest cell fate and plasticity by endothelin-3. An.Acad.Bras.Cienc., 73:533–545, (2001). [22] Etchevers HC, Couly G, Le Douarin NM. Morphogenesis of the branchial vascular sector. Trends.Cardiovasc.Med., 12:299–304, (2002). [23] Burnstock G, Ralevic V. New insights into the local regulation of blood flow by perivascular nerves and endothelium. Br.J.Plastic.Surg., 47:527–543, (1994). [24] James JM, Mukouyama YS (2011) Neuronal action on the developing blood vessel pattern. Semin Cell Dev Biol. (2011) Dec; 22(9): 1019–1027. doi: 10.1016/j.semcdb.(2011).09.010 [25] Bauer, H. C., Bauer, H., Lametschwandtner, A., Amberger, A., Ruiz, P., and Steiner, M. (1993). Neovascularization and the appearance of morphological characteristics of the blood-brain barrier in the embryonic mouse central nervous system. Dev. Brain Res. 75, 269–278. doi: 10.1016/0165-3806(93)90031-5 [26] Carmeliet P (2003). Angiogenesis in health and disease. Nat Med 9:653–660. [27] Ferrara N, Kerbel RS (2005). Angiogenesis as a therapeutic target. Nature 438:967–974 [28] De Almodovar CR, Lambrechts D, Mazzone M, Carmeliet P. Role and Therapeutic Potential of VEGF in the Nervous System. Physiological Reviews., 89:607-648, (2009). [29] Finney AC and Orr AW (2018) Guidance Molecules in Vascular Smooth Muscle. Front. Physiol. 9:1311. doi: 10.3389/fphys.(2018).01311 [30] Iadecola C. (2017) The Neurovascular Unit Coming of Age: A Journey through Neurovascular Coupling in Health and Disease. Neuron. 27;96(1):17-42. [31] Birch DJ, Turmaine M, Boulos PB, Burnstock G. Sympathetic innervation of human mesenteric artery and vein. J.Vasc.Res., 45:323–332, (2008). [32] Dupin E, Real C, Ledouarin N. The neural crest stem cells: control of neural crest cell fate and plasticity by endothelin-3. An.Acad.Bras.Cienc., 73:533–545, (2001). [33] Andreone BJ, Lacoste B, Gu C (2015). Neuronal and vascular interactions. Annu Rev Neurosci 38: 25–46. doi: 10.1146/annurev-neuro-071714-033835. [34] Fung PCW, Kong RKC (2018) Relationship among the Meridians, Sinew Channels and Integrative Five Fluid Circulation System. Traditional Chinese Medicine 7: 74-92. [35] Yu ECL (2020) From Body Mantle to Internal Core - a Parallel Framework to Organ Systems. J Altern Complement Integr Med 6: 129. [36] Yu ECL (2020) CORE-vs-MATCH MODEL for Autism and Neuro-Developmental Disorders. J Paediatr Neonatol 2: 112. [37] Golubović AV, Bonnet X, Djordjević S, Djurakic M, Tomović L. (2013). Variations in righting behaviour across Hermann's tortoise populations. Proceedings, Biology. 06 June. [38] Faisal AA, Matheson T. (2001) Coordinated righting behaviour in locusts. J Exp Biol. 204: 637–648. [39] Evangelista D, Cam S, Huynh T, Krivitskiy I, Dudley R. (2014). Ontogeny of aerial righting and wing flapping in juvenile birds. Biol Lett. Aug;10(8). pii: 20140497. [40] Yu ECL (2019) Salient Grasp of Situations as a Mechanism Against Stress for Zang Liver. Chinese J Med Res 2: 27-30. [41] Srinivasan M, Ruina A. Computer optimization of a minimal biped model discovers walking and running. Nature. (2006); 439: 72–75. [42] Tucker VA. Energetic cost of locomotion in animals. Comp Biochem Physiol. (1970); 34: 841–846. [43] Alexander RM. Optimization and gaits in the locomotion of vertebrates. Physiol Rev. (1989); 69: 1199–1227. [44] Wright CE, Marino VF, Belovsky SA, Chubb C. Visually guided, aimed movements can be unaffected by stimulus–response uncertainty. Exp Brain Res. (2007); 179:475–496. [45] Perry CJ, Sergio LE, Crawford JD, Fallah M. Hand placement near the visual stimulus improves orientation selectivity in V2 neurons. J Neurophysiol. (2015); 113(7): 2859–2870. [46] Feldman R, Magori-Cohen R, Galili G, Singer M, Louzoun Y. (2011);Mother and infant coordinate heart rhythms through episodes of interaction synchrony. Infant Behavior & Development. 34:569–577. [47] Beebe B, Lachmann FM. (2002). Infant research and adult treatment: co-constructing interactions. Hillsdale, NJ: Analytic Press. [48] Stern DN. (1985). The interpersonal world of the infant: A view from psycho-analysis and developmental psychology. New York: Basic Books. [49] Cohn JF, Tronick EZ. (1988); Mother-infant interaction: Influence is bidirectional and unrelated to periodic cycles in either partner’s behavior. Developmental Psychology. 24:386–392. [50] Kaye K, Fogel A. (1980); The temporal structure of face-to-face communication between mothers and infants. Developmental Psychology, 16:454–464. [51] YU ECL (2020) CORE-vs-MATCH MODEL for Autism and Neuro-Developmental Disorders. J Paediatr Neonatal Med 2(1): 112 [52] Silverman A, Petersen NH. (2020) Physiology Cerebral Autoregulation. StatPearls [Internet]. Treasure Island (FL): StatPearls Publishing; [53] Carlström M, Wilcox CS, Arendshorst WJ (2015) Renal autoregulation in health and disease. Physiol Rev 95: 405-511. [54] Jakob SM, Tenhunen JJ, Laitinen S, Heino A, Alhava E, et al. (2001) Effects of systemic arterial hypoperfusion on splanchnic hemodynamics and hepatic arterial buffer response in pigs. Am J Physiol Gastrointest Liver Physiol 280: 819-827. [55] Yu ECL. (2019). Zang Liver as a Frugality Rhythmic System for Stability for Activities and Against Stress. July. DOI: 10.37515/cjmr.091X.2205. [56] James JM, Mukouyama YS (2011) Neuronal action on the developing blood vessel pattern. Semin Cell Dev Biol 22: 1019–1027. pmid:21978864. [57] Yu ECL. (2015) Reviewing Zang Heart to Create a New Comprehensive Anatomico-functional Model. J. Chin. Med. 26(2): 2602002, 28 pages. [58] Désaubry L., Kanthasam AG., Nebigil CG. (2020). Prokineticin signaling in heart-brain developmental axis:Therapeutic options for heart and brain injuries. Pharmacol Res. 160:105190. doi:10.1016/j.phrs.(2020).105190 [59] Wang Bing (1995) Huangdi Neijing Huangdi Neijing. Su Wen 62 : Diaojing lun (Regulation of the channels) 調經論 [60] Selye, H., (1975). Homeostssis and heterostasis. In: Day, S.B. (Ed.), Trauma: Clinical and Biological Aspects. Springer-Verlag, New York, pp. 25–29. [61] Sterling, P. (2012). Allostasis: A model of predictive regulation. Physiology &Behavior. 106(1): 5–15. doi:10.1016/j.physbeh. [62] Mattson, M.P., Calabrese, E.J., (2014). Hormesis: what it is and why it matters. In: Mattson, M.P., Calabrese, E.J. (Eds.), Hormesis: A Revolution in Biology, Toxicology and Medicine. Humana Press Inc., pp. 1–13. [63] KJA Davies. (2016) Adaptive homeostasis. Mol Aspects Med. 49:1-7. doi: 10.1016/j.mam.(2016).04.007. Epub (2016) Apr 22. [64] Fontana L, Atella V, Kammen DM (2013) Energy efficiency as a unifying principle for human, environmental, and global health. F1000Research, 2:101 [65] Garcés M. (2019) Emotional theory of rationality. Frontiers in Integrative Neuroscience, 13, Article 11. https:// https://doi.org/10.3389/fnint.(2019).00011 [66] Feldman R. Mother–infant synchrony and the development of moral orientation in childhood and adolescence: Direct and indirect mechanisms of developmental continuity. Am J Orthopsychiat. (2007); 77:582–597. [67] Schonert-Reichl, K. A., Oberle, E., Lawlor, M. S.,et al. (2015) Enhancing Cognitive and Social–Emotional Development Through a Simple-to-Administer Mindfulness-Based School Program for Elementary School Children: A Randomized Controlled Trial. Dev Psychol. 51(1): 52–66. doi: 10.1037/a0038454. [68] Schore AN. (1994). Affect regulation and the origins of the self. Mahwah, NJ: Erlbaum. Burger JM, Ehrlichman A, Raymond NC, Ishikawa JM, Sandoval J. (2006) Reciprocal favor exchange and compliance. Social Influence. 1, 169–184. [69] Burger JM., Horita M, Kinoshita L, Roberts K, Vera C. (1997) The effects of time on the norm of reciprocity. Basic and Applied Social Psychology. 19: 91–100. [70] Nerem RM , Levesque MJ, Cornhill JF. (1980). Social Environment as a Factor in Diet-Induced Atherosclerosis. Science. 208 (4451), 1475–76. doi: 10.1126/science.7384790. [71] Harding K. (2020). The Rabbit Effect: Live Longer, Happier, and Healthier with the Groundbreaking Science of Kindness. Atria Books. ISBN13: 9781501184277 [72] “天年.” Huang Di Nei Jing Ling Shu: The Ancient Classic on Needle Therapy, by Paul U. Unschuld, 1st ed., University of California Press, Oakland, California, (2016), pp. 513–518. JSTOR, www.jstor.org/stable/10.1525/j.ctv1xxv82.57. Accessed 23 Aug. (2021). [73] Moore G, Calkins SD. Infants’ vagal regulation in the still-face paradigm is related to dyadic coordination of mother–infant interaction. Developmental Psychology, (2004); 40:1068–1080. [74] Schore AN. Attachment and the regulation of the right brain. Attach Hum Dev. (2000); 2: 23−47. [75] Bernaras E, Jaureguizar J, Garaigordobil M (2019) Child and Adolescent Depression: Child and Adolescent Depression: A Review of Theories, Evaluation Instruments, Prevention Programs, and Treatments. Front. Psychol., 10:543. doi: 10.3389/fpsyg.(2019).00543. [76] Engle-Friedman M. (2014) The effects of sleep loss on capacity and effort. Sleep Science 7:213–224. [77] Ma Y, Liang L, Zheng F, Shi L, Zhong B, Xie W. Duration and Cognitive Decline. JAMA Netw Open. (2020) Sep 1;3(9):e2013573. doi: 10.1001/jamanetworkopen.2020.13573. [78] Zhang C, Zhou J, Zhou T. (2021). Relationship of electrocardiographic changes and severity of acute cerebral ischemic stroke in old patients: A clinical observational study. Medicine 100(26):e26498 DOI:10.1097/MD.0000000000026498 [79] Barth, E., Sieber, P., Stark, H., & Schuster, S. (2020). Robustness during Aging—Molecular Biological and Physiological Aspects.