Cardiovascular changes during phototherapy in newborns
Jazyk angličtina Země Česko Médium print
Typ dokumentu časopisecké články, přehledy
PubMed
36647906
PubMed Central
PMC9906667
DOI
10.33549/physiolres.935002
PII: 935002
Knihovny.cz E-zdroje
- MeSH
- fototerapie škodlivé účinky metody MeSH
- lidé MeSH
- minutový srdeční výdej MeSH
- novorozenec MeSH
- otevřená tepenná dučej * etiologie MeSH
- srdce * fyziologie MeSH
- Check Tag
- lidé MeSH
- novorozenec MeSH
- Publikační typ
- časopisecké články MeSH
- přehledy MeSH
Phototherapy is the most effective non-invasive method of neonatal hyperbilirubinemia treatment. Application of this method can be associated with side effects including changes in the cardiovascular system. During phototherapy, the primary effects in the cardiovascular system include cutaneous vasodilation leading to skin hyperperfusion and subsequent redistribution of blood. The increased blood flow through the skin is associated with increased transepidermal water loss. Further effects include an increase in cerebral blood flow. Redistribution of blood to the cutaneous bed is compensated by hypoperfusion in the splanchnic area (mostly postprandial) and a significant reduction of the renal blood flow. Regarding closure/reopening of the ductus arteriosus, the results suggest that that phototherapy does not affect ductal patency. During phototherapy the cardiac output can be slightly reduced due to a decreased stroke volume, especially in preterm newborns. Systemic blood pressure is decreased and heart rate is elevated in both preterm and term newborns during phototherapy. The heart rate variability is slightly reduced. Symbolic dynamics analysis of the short-term HRV showed that during phototherapy the activity of the ANS regulating the heart rate is shifted towards the dominancy of the sympathetic activity. The responses in the cardiovascular system of premature/mature newborns without other pathology confirm a well physiologically functioning control of this system, even under specific conditions of phototherapy.
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Bhutani VK, Stark AR, Lazzeroni LC, Laura C, Lazzeroni LC, Poland R, Gourley GR, et al. Predischarge screening for severe neonatal hyperbilirubinemia identifies infants who need phototherapy. J Pediatr. 2013;162:477–482. doi: 10.1016/j.jpeds.2012.08.022. PubMed DOI
Kaplan M, Muraca M, Hammerman C, Rubaltelli F, Vilei M, Vreman H, Stevenson D. Imbalance between production and conjugation of bilirubin: A fundamental concept in the mechanism of neonatal jaundice. Pediatrics. 2002;110:e47. doi: 10.1542/peds.110.4.e47. PubMed DOI
Maisels MJ. Managing the jaundiced newborn: a persistent challenge. CMAJ. 2015;187:335–343. doi: 10.1503/cmaj.122117. PubMed DOI PMC
Wang J, Guo G, Li A, Cai W-Q, Wang X. Challenges of phototherapy for neonatal hyperbilirubinemia (Review) Exp and Therapeutic Medicine. 2021;21:231–241. doi: 10.3892/etm.2021.9662. PubMed DOI PMC
Ruud Hansen TW. Phototherapy for neonatal jaundice--therapeutic effects on more than one level? Semin Perinatol. 2010;34:231–234. doi: 10.1053/j.semperi.2010.02.008. PubMed DOI
Uchida Y, Takahashi Y, Morimoto Y, Greimel P, Tosaki A, Kumagai A, Nishikubo T, Miyawaki A. Noninvasing monitoring of bilirubin photoisomer excretion during phototherapy. Sci Reports. 2022;12:11798. doi: 10.1038/s41598-022-16180-9. PubMed DOI PMC
Maisels MJ, McDonagh AF. Phototherapy for neonatal jaundice. N Engl J Med. 2008;358:920928. doi: 10.1056/NEJMct0708376. PubMed DOI
Dvořák A, Pospíšilová K, Žížalová K, Capková N, Muchová L, Vecka M, Vrzáčková N, Křížová J, Zelenka J, Vítek L. The effects of bilirubin and lumirubin on metabolic and oxidative stress markers. Front Pharmacol. 2021;12:567001. doi: 10.3389/fphar.2021.567001. PubMed DOI PMC
Stokowski LA. Fundamentals of phototherapy for neonatal jaundice. Adv Neonatal Care. 2011;11(5 Suppl):S10–S21. doi: 10.1097/ANC.0b013e31822ee62c. PubMed DOI
Vandborgh PK, Hansen BM, Greisen G, Ebbesen F. Dose-response relationship of phototherapy for hyperbilirubinemia. Pediatrics. 2012;130:e352–e357. doi: 10.1542/peds.2011-3235. PubMed DOI
Ennever JF. Blue light, green light, white light, more light: treatment of neonatal jaundice. Clin Perinatol. 1990;17:467–481. doi: 10.1016/S0095-5108(18)30579-7. PubMed DOI
Bhutani VK Committee on Fetus and Newborn, American Academy of Pediatrics. Phototherapy to prevent severe neonatal hyperbilirubinemia in the newborn infant 35 or more weeks of gestation. Pediatrics. 2011;128:e1046–e1052. doi: 10.1542/peds.2011-1494. PubMed DOI
Demová K, Füssiová M, Kovácsová M. Novorodenecká žltačka (Neonatal hyperbilirubinemia) (Article in Slovak) Pediatr Prax. 2017;18:51–58.
Yurdakök M. Phototherapy in the newborn: what’s new? J Pediatr Neonat Individual Med. 2015;4:e040255. doi: 10.7363/040255. DOI
Xiong T, Qu Y, Cambier S, Mu D. The side effects of phototherapy for neonatal jaundice: what do we known? What should we do? Eur J Pediatr. 2011;170:1247–1255. doi: 10.1007/s00431-011-1454-1. PubMed DOI
Oh W, Yao AC, Hanson JS, Lind J. Peripheral circulatory response to phototherapy in newborn infants. Acta Paediatr Scand. 1973;62:49–54. doi: 10.1111/j.1651-2227.1973.tb08064.x. PubMed DOI
Wu PYK, Wong WH, Hodgman JE, Levan N. Changes in blood flow in the skin and muscle with phototherapy. Pediatr Res. 1974;8:257–262. doi: 10.1203/00006450-197404000-00007. PubMed DOI
Walther FJ, Wu PY, Siassi B. Cardiac output changes in newborns with hyperbilirubinemia treated with phototherapy. Pediatrics. 1985;76:918–921. doi: 10.1542/peds.76.6.918. PubMed DOI
Jahnukainen T, Lindqvist A, Jalonen J, Kero P, Valimaki I. Responsiveness of cutaneous vasculature to thermal stimulation during phototherapy in neonatal jaundice. Eur J Pediatr. 1999;158:757–760. doi: 10.1007/s004310051195. PubMed DOI
Liu G-S, Wu H, WB-Q, Huang R-Z, Zhao L-H, Wen Y. Effect of phototherapy on blood endothelin and nitric oxide levels: clinical significance in preterm infants. World J Pediatr. 2008;4:31–35. doi: 10.1007/s12519-008-0006-x. PubMed DOI
Hodr R. Klinická účinnost, indikace a některé rizika fototerapie novorozeneckých hyperbilirubinémí. Praha, Avicenum. 1979
Maayan-Metzger A, Yosipovitch G, Hadad E, Sirota L. Transepidermal water loss and skin hydration in preterm infants during phototherapy. Am J Perinatol. 2001;18:393–396. doi: 10.1055/s-2001-18698. PubMed DOI
Grünhagen Dirk J, De Boer Mark GJ, De Beaufort AJ, Walther FJ. Transepidermal water loss during halogen spotlight phototherapy in preterm infants. Pediat Res. 2002;51:402–405. doi: 10.1203/00006450-200203000-00022. PubMed DOI
Benders MJ. The effect of phototherapy on cerebral blood flow velocity in preterm infants. Acta Paediatr. 1998;87:786–792. doi: 10.1111/j.1651-2227.1998.tb01748.x. PubMed DOI
Dani C, Bertini G, Martelli E, Pezzati M, Filippi L, Prussi C, Tronchin M, Rubaltelli F. Effects of phototherapy on cerebral haemodynamics in preterm infants: Is fibre-optic different from conventional phototherapy? Dev Med Child Neurol. 2004;46:114–118. doi: 10.1111/j.1469-8749.2004.tb00460.x. PubMed DOI
Bertini G, Perugi S, Elia S, Pratesi S, Dani C, Rubaltelli FF. Transepidermal water loss and cerebral hemodynamics in preterm infants: conventional versus LED phototherapy. Europ J Pediatrics. 2008;167:37–42. doi: 10.1007/s00431-007-0421-3. PubMed DOI
Borenstein-Levin L, Sharif D, Amshalom A, Riskin A, Hemo M, Khalil A, Bader D, Kugelman A. Effects of phototherapy on coronary blood flow in healthy neonates: A pilot study. Neonatology. 2016;110:75–82. doi: 10.1159/000444244. PubMed DOI
Mat’ašová K. Splanchnická cirkulácia novorodencov. Martin; Samedi: 2013. p. 169.
Kadalraja R, Patole SK, Muller R, Whitehall JS. Is mesenteric blood flow compromised during phototherapy in preterm neonates? Arch Dis Child Fetal Neonatal Ed. 2004;89:F564. doi: 10.1136/adc.2004.057646. PubMed DOI PMC
Yao AC, Martinussen M, Johansen OJ, Brubakk AM. Phototherapy associated changes in mesenteric blood flow response to feeding in term neonates. J Pediatr. 1994;124:309–312. doi: 10.1016/S0022-3476(94)70325-6. PubMed DOI
Pezzati M, Biagiotti R, Vangi V, Lombardi E, Wiechmann L, Rubaltelli FF. Changes in mesenteric blood flow response to feeding: conventional versus fiber-optic phototherapy. Pediatrics. 2000;105:350–353. doi: 10.1542/peds.105.2.350. PubMed DOI
Benders MJ, Van Bel F, van de Bor M. The effect of phototherapy on renal blood flow velocity in preterm infants. Biol Neonate. 1998;73:228–234. doi: 10.1159/000013981. PubMed DOI
Benders MJ, Van Bel F, van de Bor M. Cardiac output and ductal reopening during phototherapy in preterm infants. Acta Paediatr. 1999;88:1014–1019. doi: 10.1111/j.1651-2227.1999.tb00199.x. PubMed DOI
Rosenfeld W, Sadhev S, Brunot V, Jhaveri R, Zabaleta I, Evans HE. Phototherapy effect on the incidence of patent ductus arteriosus in premature infants: prevention with chest shielding. Pediatrics. 1986;78:10–14. doi: 10.1542/peds.78.1.10. PubMed DOI
Venturini CM, Palmer RM, Moncada S. Vascular smooth muscle contains a depletable store of a vasodilator which is light-activated and restored by donors of nitric oxide. J Pharmacol Exp Ther. 1993;266:1497–1500. PubMed
Surmeli-Onay O, Yurdakok M, Karagoz T, Erkekoglu P, Ertugrul I, Takci S, Giray BK, Aykan HH, Korkmaz A, Yigit S. A new approach to an old hypothesis; phototherapy does not affect ductal patency via PGE2 and PGI2. J Matern Fetal Neonatal Med. 2015;28:16–22. doi: 10.3109/14767058.2014.899575. PubMed DOI
Kapoor S, Mishra D, Chawla D, Suksham J. Chest shielding in preterm neonates under phototherapy-a randomised control trial. Europ J Pediat. 2021;180:767–773. doi: 10.1007/s00431-020-03763-9. PubMed DOI
Bader D, Kugelman A, Blum DE, Riskin A, Tirosh E. Effect of phototherapy on cardiorespiratory activity during sleep in neonates with physiologic jaundice. Isr Med Assoc J. 2006;8:12–16. PubMed
Firouzi M, Sherkatolabbasieh H, Nezami1 A, Shafizadeh S. Effect of phototherapy on stroke volume in newborn infants with jaundice. J Pediatr Intensive Care. 2020;9:207–209. doi: 10.1055/s-0040-1708556. PubMed DOI PMC
Taksande A, Vagha J, Dalal Y. Effect of phototherapy on cardiac functions in neonates with hyperbilirubinemia. A prospective cross-sectional study. Ann Neonatol J. 2021;3:88–107. doi: 10.21608/ANJ.2021.76113.1027. DOI
Javorka K, Zavarská L’. Zmeny systémového tlaku a kardiorespiračných parametrov u nedonosených novorodencov počas fototerapie. (Article in Slovak) Cesk Pediatr. 1990;45:230–232. PubMed
Kellerová E, Kittová M, Kováčik P. Neinvazívna metóda merania krvného tlaku u novorodencov na princípe Dopplerovho fenoménu ultrazvuku. (Article in Slovak) Bratisl Lek Listy. 1978;70:409–418. PubMed
Ergenekon Gücüyener K, Dursun H, Erbaş D, Oztürk G, Koç E, Atalay Y. Nitric oxide production in newborns under phototherapy. Nitric Oxide. 2002;6:69–72. doi: 10.1006/niox.2001.0364. PubMed DOI
Turan O, Ergenekon E, Koç E, Atalay Y, Unal S, Gücüyener K, Erbaş D, Seneş M. Impact of phototherapy on vasoactive mediators: NO and VEGF in the newborn. J Perinat Med. 2004;32:359–364. doi: 10.1515/JPM.2004.067. PubMed DOI
Abu Faddan NH, Abd El-Aziz NHR, Abd El-Azeem HG, Shreif T. Effect of phototherapy on blood levels of endothelin-1 and nitric oxide in hyberbilirubinemic newborn infants. e-J Neonatol Res. 2014;4:14–20.
Nandrážiová L, Javorka K, Czippelová B, Mat’ašová K. Zmeny tlaku krvi a niektorých d’alších parametrov počas fototerapie donosených novorodencov. (Article in Slovak) Česko Slov Pediat. 2019;74:449–457.
Gournay V, Drouin E, Rozé JC. Development of baroreflex control of heart rate in preterm and full term infants. Arch Dis Child Fetal Neonatal Ed. 2002;86:F151–F154. doi: 10.1136/fn.86.3.F151. PubMed DOI PMC
Javorka K, Hašková K, Czippelová B, Zibolen M, Javorka M. Baroreflex sensitivity and blood pressure in premature infants - dependence on gestational age, postnatal age and sex. Physiol Res. 2021;70(Suppl 3):S349–S356. doi: 10.33549/physiolres.934829. PubMed DOI PMC
Weissman A, Berkowitz E, Smolkin T, Blazer S. Effect of phototherapy on neonatal heart rate variability and complexity. Neonatology. 2009;95:41–46. doi: 10.1159/000151754. PubMed DOI
Uhríková Z, Zibolen M, Javorka K, Chládeková L, Javorka M. Hyperbilirubinemia and phototherapy in newborns: Effect on cardiac autonomic control. Early Hum Dev. 2015;91:351–356. doi: 10.1016/j.earlhumdev.2015.03.009. PubMed DOI