Fetal facial expression in response to intravaginal music emission

First Published September 29, 2015 Research Article Find in PubMed

Authors

1
 
Institut Marquès, Barcelona, Spain
by this author
, 1
 
Institut Marquès, Barcelona, Spain
by this author
, 2
 
Human Anatomy and Embryology Unit, Laboratory of Surgical Neuroanatomy, Facultat de Medicina, Universitat de Barcelona, Barcelona, Spain
by this author
First Published Online: September 29, 2015

This study compared fetal response to musical stimuli applied intravaginally (intravaginal music [IVM]) with application via emitters placed on the mother’s abdomen (abdominal music [ABM]). Responses were quantified by recording facial movements identified on 3D/4D ultrasound. One hundred and six normal pregnancies between 14 and 39 weeks of gestation were randomized to 3D/4D ultrasound with: (a) ABM with standard headphones (flute monody at 98.6 dB); (b) IVM with a specially designed device emitting the same monody at 53.7 dB; or (c) intravaginal vibration (IVV; 125 Hz) at 68 dB with the same device. Facial movements were quantified at baseline, during stimulation, and for 5 minutes after stimulation was discontinued. In fetuses at a gestational age of >16 weeks, IVM-elicited mouthing (MT) and tongue expulsion (TE) in 86.7% and 46.6% of fetuses, respectively, with significant differences when compared with ABM and IVV (p = 0.002 and p = 0.004, respectively). There were no changes from baseline in ABM and IVV. TE occurred ≥5 times in 5 minutes in 13.3% with IVM. IVM was related with higher occurrence of MT (odds ratio = 10.980; 95% confidence interval = 3.105–47.546) and TE (odds ratio = 10.943; 95% confidence interval = 2.568–77.037). The frequency of TE with IVM increased significantly with gestational age (p = 0.024). Fetuses at 16–39 weeks of gestation respond to intravaginally emitted music with repetitive MT and TE movements not observed with ABM or IVV. Our findings suggest that neural pathways participating in the auditory–motor system are developed as early as gestational week 16. These findings might contribute to diagnostic methods for prenatal hearing screening, and research into fetal neurological stimulation.

1. de Vries, JI, Fong, BF. Normal fetal motility: an overview. Ultrasound Obstet Gynecol 2006; 27: 70111.
Google Scholar | Crossref | Medline | ISI
2. Tan, KH, Smyth, RM, Wei, X. Fetal vibroacoustic stimulation for facilitation of tests of fetal wellbeing. Cochrane Database Syst Rev 2013; 12: CD002963CD002963.
Google Scholar
3. Guimaraes Filho, HA, Araujo Junior, E, Mello Junior, CF. Assessment of fetal behavior using four-dimensional ultrasonography: current knowledge and perspectives. Rev Assoc Med Bras 2013; 59: 50713.
Google Scholar | Medline | ISI
4. Kanenishi, K, Hanaoka, U, Noguchi, J. 4D ultrasound evaluation of fetal facial expressions during the latter stages of the second trimester. Int J Gynaecol Obstet 2013; 121: 25760.
Google Scholar | Crossref | Medline | ISI
5. Kurjak, A, Misković, B, Stanojević, M. New scoring system for fetal neurobehavior assessed by three- and four-dimensional sonography. J Perinat Med 2008; 36: 7381.
Google Scholar | Crossref | Medline | ISI
6. Kurjak, A, Stanojević, M, Andonotopo, W. Fetal behavior assessed in all three trimesters of normal pregnancy by four-dimensional ultrasonography. Croat Med J 2005; 46: 77280.
Google Scholar | Medline | ISI
7. Lopez Ramon, YCC . Response of the foetal pupil to vibro-acoustic stimulation: a foetal attention test. Early Hum Dev 2011; 87: 199204.
Google Scholar | Crossref | Medline | ISI
8. Hepper, PG, Shahidullah, BS. Development of fetal hearing. Arch Dis Child 1994; 71: F817.
Google Scholar | Crossref | Medline | ISI
9. Sohmer, H, Perez, R, Sichel, JY. The pathway enabling external sounds to reach and excite the fetal inner ear. Audiol Neurootol 2001; 6: 10916.
Google Scholar | Crossref | Medline | ISI
10. Graven, SN, Brownw, JV. Auditory development in the fetus and infant. Newborn Inf Nursing Rev 2008; 8: 18793.
Google Scholar | Crossref
11. Shahidullah, S, Hepper, PG. Hearing in the fetus: prenatal detection of deafness. Int J Prenatal Perinatal Stud 1992; 4: 23540.
Google Scholar
12. Lecanuet, JP, Graniere-Deferre, C, Jacquet, AY. Fetal discrimination of low-pitched musical notes. Dev Psychobiol 2000; 36: 2939.
Google Scholar | Crossref | Medline | ISI
13. Shahidullah, S, Hepper, PG. Frequency discrimination by the fetus. Early Hum Dev 1994; 36: 1326.
Google Scholar | Crossref | Medline | ISI
14. Graham, EM, Peters, AJ, Abrams, RM. Intraabdominal sound levels during vibroacoustic stimulation. Am J Obstet Gynecol 1991; 164: 11404.
Google Scholar | Crossref | Medline | ISI
15. Gerhardt, KJ, Abrams, RM. Fetal hearing: characterization of the stimulus and response. Semin Perinatol 1996; 20: 1120.
Google Scholar | Crossref | Medline | ISI
16. Sohmer, H, Freeman, S. The pathway for the transmission of external sounds into the fetal inner ear. J Basic Clin Physiol Pharmacol 2001; 12: 9199.
Google Scholar | Crossref | Medline
17. Gerhardt, KJ, Abrams, RM. Fetal exposures to sound and vibroacoustic stimulation. J Perinatol 2000; 20: S2130.
Google Scholar | Crossref | Medline
18. Querleu, D, Renard, X, Boutteville, C. Hearing by the human fetus? Semin Perinatol 1989; 13: 40920.
Google Scholar | Medline | ISI
19. Gerhardt, KJ, Abrams, RM, Oliver, CC. Sound environment of the fetal sheep. Am J Obstet Gynecol 1990; 162: 2827.
Google Scholar | Crossref | Medline | ISI
20. Petrikovsky, BM, Kaplan, G, Holsten, N. Eyelid movements in normal human fetuses. J Clin Ultrasound 2003; 31: 299301.
Google Scholar | Crossref | Medline | ISI
21. Kurjak, A, Stanojevic, M, Predojevic, M. Neurobehavior in fetal life. Semin Fetal Neonatal Med 2012; 17: 31923.
Google Scholar | Crossref | Medline | ISI
22. Lebit, DF, Vladareanu, PD. The role of 4D ultrasound in the assessment of fetal behaviour. Maedica (Buchar) 2011; 6: 1207.
Google Scholar | Medline
23. Yan, F, Dai, SY, Akther, N. Four-dimensional sonographic assessment of fetal facial expression early in the third trimester. Int J Gynaecol Obstet 2006; 94: 10813.
Google Scholar | Crossref | Medline | ISI
24. Sato, M, Kanenishi, K, Hanaoka, U. 4D ultrasound study of fetal facial expressions at 20-24 weeks of gestation. Int J Gynaecol Obstet 2014; 126: 2759.
Google Scholar | Crossref | Medline | ISI
25. Querleu, D, Renard, X, Crepin, G. Intra-uterine sound and fetal auditory perception. Bull Acad Natl Med 1981; 165: 5818.
Google Scholar | Medline | ISI
26. Querleu, D, Renard, X, Versyp, F. Fetal hearing. Eur J Obstet Gynecol Reprod Biol 1988; 28: 191212.
Google Scholar | Crossref | Medline | ISI
27. Jones, SS . Exploration or imitation? The effect of music on 4-week-old infants’ tongue protrusions. Infant Behav Dev 2006; 29: 12630.
Google Scholar | Crossref | Medline | ISI
28. Kurjak, A, Stanojevic, M, Andonotopo, W. Behavioral pattern continuity from prenatal to postnatal life—a study by four-dimensional (4D) ultrasonography. J Perinat Med 2004; 32: 34653.
Google Scholar | Crossref | Medline | ISI
29. Stanojevic, M, Kurjak, A, Salihagic-Kadic, A. Neurobehavioral continuity from fetus to neonate. J Perinat Med 2011; 39: 1717.
Google Scholar | Crossref | Medline | ISI
30. Ceriani, F, Fogliani, R, Kustermann, A Facial expressions. In: Piontelli, A (ed.). Development of Normal Fetal Movements: The First 25 Weeks of Gestation, Berlin: Springer, 2010, pp. 7786.
Google Scholar | Crossref
31. Eggermont, JJ, Moore, JK Morphological and functional development of the auditory nervous system. In: Werner, LA, Fay, RR, Popper, AN (eds). Human Auditory Development Springer Handbook of Auditory Research, New York: Springer, 2012, pp. 61107..
Google Scholar | Crossref
32. Krmpotić-Nemanić, J, Kostović, I, Kelović, Z. Development of the human fetal auditory cortex: growth of afferent fibres. Acta Anat (Basel) 1983; 116: 6973.
Google Scholar | Crossref | Medline
33. Jürgens, U . The neural control of vocalization in mammals: a review. J Voice 2009; 23: 110.
Google Scholar | Crossref | Medline | ISI
34. Nieuwenhuys, R, Voogd, J, Huijzen, Cv. Motor systems. The human central nervous system, 4th edn. Berlin, New York: Springer, 2008, pp. xiv, 967xiv, 967.
Google Scholar | Crossref
35. Fay, RA, Norgren, R. Identification of rat brainstem multisynaptic connections to the oral motor nuclei using pseudorabies virus. III. Lingual muscle motor systems. Brain Res Brain Res Rev 1997; 25: 291311.
Google Scholar | Crossref | Medline
36. Schulz, GM, Varga, M, Jeffires, K. Functional neuroanatomy of human vocalization: an H215O PET study. Cereb Cortex 2005; 15: 183547.
Google Scholar | Crossref | Medline | ISI
37. Dujardin, E, Jurgens, U. Afferents of vocalization-controlling periaqueductal regions in the squirrel monkey. Brain Res 2005; 1034: 11431.
Google Scholar | Crossref | Medline | ISI
38. Fritz, TH, Renders, W, Muller, K. Anatomical differences in the human inferior colliculus relate to the perceived valence of musical consonance and dissonance. Eur J Neurosci 2013; 38: 3099105.
Google Scholar | Medline | ISI
39. Zatorre, RJ, Evans, AC, Meyer, E. Neural mechanisms underlying melodic perception and memory for pitch. J Neurosci 1994; 14: 190819.
Google Scholar | Medline | ISI
40. O’Connell, LA, Hofmann, HA. The vertebrate mesolimbic reward system and social behavior network: a comparative synthesis. J Comp Neurol 2011; 519: 3599639.
Google Scholar | Crossref | Medline | ISI
41. Whitworth, MK, Fisher, M, Heazell, A. Reduced Fetal Movements. Green-top Guideline No. 57, London: Royal College of Obstetricians & Gynaecologists, 2011.
Google Scholar

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