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Heightened stress responsivity and emotional reactivity during pubertal maturation: Implications for psychopathology

Published online by Cambridge University Press:  15 January 2009

Linda Patia Spear*
Affiliation:
Binghamton University
*
Address correspondence and reprint requests to: Linda Patia Spear, Department of Psychology and Center for Development and Behavioral Neuroscience, Binghamton University, Binghamton, NY 13902-6000; E-mail: lspear@binghamton.edu.

Abstract

This commentary reviews and reflects on the studies of this special section: studies that collectively provide compelling evidence for meaningful changes in stress- and emotionally reactive psychophysiological systems with the transition from middle childhood into adolescence. The observed changes were complex and often overlaid upon ontogenetic differences in basal levels of activation of these systems. Maturational increases in responsiveness to stressors were stressor dependent and differentially expressed across autonomic and hormonal measures. Pubertal status increased the impact of some affective valence manipulations, although not significantly influencing others, including negative affect-related potentiation of startle/reflexes. Such ontogenetic increases in stressor and affect sensitivity may have implications for developmental psychopathology. Developmental increases in stressor reactivity may normally aid youth in responding adaptively to the challenges of adolescence, but may result in stress dysregulation among at-risk adolescents, increasing further their vulnerability for psychopathology. Pubertal-related increases in sensitivity to emotionally laden stimuli may exacerbate individual predispositions for exaggerated affective processing, perhaps contributing to the emergence of psychological disorders in these youth. Together, these studies, with their innovative use of autonomic, reflexive, and hormonal measures to index age- and pubertal-related changes in reactivity to stressors and affective stimuli, provide promising directions for future research. Some of these, along with a few cautionary notes, are outlined.

Type
Commentary
Copyright
Copyright © Cambridge University Press 2009

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References

Angold, A. (2003). Adolescent depression, cortisol and DHEA [Editorial]. Psychological Medicine, 33, 573581.CrossRefGoogle ScholarPubMed
Bauer, A. M., Quas, J. A., & Boyce, W. T. (2002). Associations between physiological reactivity and children's behavior: Advantages of a multisystem approach. Journal of Developmental and Behavioral Pediatrics, 23, 102113.CrossRefGoogle ScholarPubMed
Biro, P. A., Abrahams, M. V., Post, J. R., & Parkinson, E. A. (2004). Predators select against high growth rates and risk-taking behaviour in domestic trout populations. Proceedings of the Royal Society of London Series B, 271, 22332237.CrossRefGoogle ScholarPubMed
Booth, A., Johnson, D. R., Granger, D. A., Crouter, A. C., & McHale, S. (2003). Testosterone and child and adolescent adjustment: The moderating role of parent–child relationships. Developmental Psychology, 39, 8598.CrossRefGoogle ScholarPubMed
Bradley, M. M., Lang, P. J., & Cuthbert, B. N. (1993). Emotion, novelty, and the startle reflex: Habituation in humans. Behavioral Neuroscience, 107, 970980.CrossRefGoogle ScholarPubMed
Canli, T., Desmond, J., Zhao, Z., & Gabrieli, J. D. (2002). Sex differences in the neural basis of emotional memories. Proceedings of the National Academy of Sciences of the United States of America, 99, 1078910794.CrossRefGoogle ScholarPubMed
Collet, C., Vernet-Maury, E., Delhomme, G., & Dittmar, A. (1997). Autonomic nervous system response patterns specificity to basic emotions. Journal of the Autonomic Nervous System, 62, 4557.CrossRefGoogle ScholarPubMed
Cosgrove, K. P., Mazure, C. M., & Staley, J. K. (2007). Evolving knowledge of sex differences in brain structure, function, and chemistry. Biological Psychiatry, 62, 847855.CrossRefGoogle ScholarPubMed
Craig, A. D. (2002). How do you feel? Interoception: The sense of the physiological condition of the body. Nature Reviews Neuroscience, 3, 655666.CrossRefGoogle Scholar
Dahl, R. E. (2004). Adolescent brain development: A period of vulnerabilities and opportunities. Annals of the New York Academy of Sciences, 1021, 123.CrossRefGoogle ScholarPubMed
Dalgleish, T. (2004). The emotional brain. Nature Reviews Neuroscience, 5, 582589.CrossRefGoogle ScholarPubMed
Dunn, B. D., Dalgleish, T., & Lawrence, A. D. (2006). The somatic marker hypothesis: A critical evaluation. Neuroscience and Biobehavioral Reviews, 30, 239271.CrossRefGoogle ScholarPubMed
Ellis, B. J. (2004). Timing of pubertal maturation in girls: An integrated life history approach. Psychological Bulletin, 130, 920958.CrossRefGoogle ScholarPubMed
Ellis, B. J., & Garber, J. (2000). Psychosocial antecedents of variation in girls' pubertal timing: Maternal depression, stepfather presence, and marital and family stress. Child Development, 71, 485501.CrossRefGoogle ScholarPubMed
Frisch, R. E. (1991). Puberty and body fat. In Lerner, R. M., Petersen, A. C., & Brooks-Gunn, J. (Eds.), Encyclopedia of adolescence (pp. 884892). New York: Garland.Google Scholar
Ge, X., Conger, R. D., & Elder, G. H. Jr. (2001). Pubertal transition, stressful life events, and the emergence of gender differences in adolescent depressive symptons. Developmental Psychology, 37, 404417.CrossRefGoogle Scholar
Ge, X., Kim, I., Brody, G., Conger, R. D., Simons, R. L., Gibbons, F., et al. (2003). It's about timing and change: Pubertal transition effects on symptoms of major depression among African American youths. Developmental Psychology, 39, 430439.CrossRefGoogle ScholarPubMed
Gordis, E. B., Granger, D. A., Susman, E. J., & Trickett, P. K. (2006). Asymmetry between salivary cortisol and α-amylase reactivity to stress: Relation to aggressive behavior in adolescents. Psychoneuroendocrinology, 31, 976987.CrossRefGoogle ScholarPubMed
Gordis, E. B., Granger, D. A., Susman, E. J., & Trickett, P. K. (2008). Salivary alpha amylase-cortisol asymmetry in maltreated youth. Hormones and Behavior, 53, 96103.CrossRefGoogle ScholarPubMed
Gunnar, M. R., Wewerka, S., Frenn, K., Long, J. D., & Griggs, C. (2009). Developmental changes in HPA activity over the transition to adolescence: Normative changes and associations with puberty. Development and Psychopathology, 21, 6985.CrossRefGoogle Scholar
Kaplowitz, P. (2006). Pubertal development in girls: Secular trends. Current Opinion in Obstetrics and Gynecology, 18, 487491.CrossRefGoogle ScholarPubMed
Karlberg, J. (2002). Secular trends in pubertal development. Hormone Research, 57(Suppl. 2), 1930.CrossRefGoogle ScholarPubMed
Kessler, R. C., Berglund, P., Demler, O., Jin, R., Merikangas, K. R., & Walters, E. E. (2005). Lifetime prevalence and age-of-onset distributions of dsm-iv disorders in the national comorbidity survey replication. Archives of General Psychiatry, 62, 593602.CrossRefGoogle ScholarPubMed
Kurtz, M. M., & Campbell, B. A. (1994). Paradoxical autonomic responses to aversive stimuli in the developing rat. Behavioral Neuroscience, 108, 962971.CrossRefGoogle ScholarPubMed
Lang, P. J., Bradley, M. M., & Cuthbert, B. N. (1990). Emotion, attention, and the startle reflex. Psychological Review, 97, 377395.CrossRefGoogle ScholarPubMed
Larson, R., & Lampman-Petraitis, C. (1989). Daily emotional states as reported by children and adolescents. Child Development, 60, 12501260.CrossRefGoogle ScholarPubMed
Lenroot, R. K., Gogtay, N., Greenstein, D. K., Wells, G. L., Clasen, L. S., Blumenthal, J. D., et al. (2007). Sexual dimorphism of brain developmental trajectories during childhood and adolescence. NeuroImage, 36, 10651073.CrossRefGoogle ScholarPubMed
Lewis, M., Lamm, C., Segalowitz, S. J., Stieben, J., & Zelazo, P. D. (2006). Neurophysiological correlates of emotion regulation in children and adolescents. Journal of Cognitive Neuroscience, 18, 430443.CrossRefGoogle ScholarPubMed
Lupien, S. J., King, S., Meaney, M. J., & McEwen, B. S. (2001). Can poverty get under your skin? Basal cortisol levels and cognitive function in children from low and high socioeconomic status. Development and Psychopathology, 13, 653676.CrossRefGoogle ScholarPubMed
Lyss, P. J., Andersen, S. L., LeBlanc, C. J., & Teicher, M. H. (1999). Degree of neuronal activation following fg-7142 changes across regions during development. Brain Research. Developmental Brain Research, 116, 201203.CrossRefGoogle ScholarPubMed
Martin, J. R., Ballard, T. M., & Higgins, G. A. (2002). Influence of the 5-ht2c receptor antagonist, sb-242084, in tests of anxiety. Pharmacology, Biochemistry, and Behavior, 71, 615625.CrossRefGoogle ScholarPubMed
Monk, C. S., McClure, E. B., Nelson, E. E., Zarahn, E., Bilder, R. M., Leibenluft, E., et al. (2003). Adolescent immaturity in attention-related brain engagement to emotional facial expressions. NeuroImage, 20, 420428.CrossRefGoogle ScholarPubMed
Nelson, E. E., Leibenluft, E., McClure, E., & Pine, D. S. (2005). The social re-orientation of adolescence: A neuroscience perspective on the process and its relation to psychopathology. Psychological Mediciine, 35, 163174.CrossRefGoogle ScholarPubMed
Nolen-Hoeksema, S., & Girgus, J. S. (1994). The emergence of gender differences in depression during adolescence. Psychological Bulletin, 115, 424443.CrossRefGoogle ScholarPubMed
Piazza, P. V., & LeMoal, M. (1996). Pathophysiological basis of vulnerability to drug abuse: Role of an interaction between stress, glucocorticoids, and dopaminergic neurons. Annual Review of Pharmacology and Toxicology, 36, 359378.CrossRefGoogle ScholarPubMed
Porges, S. W. (2001). The polyvagal theory: Phylogenetic substrates of a social nervous system. International Journal of Psychophysiology, 42, 123146.CrossRefGoogle ScholarPubMed
Quevedo, K., Benning, S. D., Gunnar, M. R., & Dahl, R. E. (2009). The onset of puberty: Effects on the psychophysiology of defensive and appetitive motivation. Development and Psychopathology, 21, 2745.CrossRefGoogle ScholarPubMed
Radley, J. J., Arias, C. M., & Sawchenko, P. E. (2006). Regional differentiation of the medial prefrontal cortex in regulating adaptive responses to acute emotional stress. The Journal of Neuroscience, 26, 1296712976.CrossRefGoogle ScholarPubMed
Roemmich, J. N., Richmond, E. J., & Rogol, A. D. (2001). Consequences of sport training during puberty. Journal of Endocrinological Investigation, 24, 708715.CrossRefGoogle ScholarPubMed
Rosen, B. R., & Schulkin, J. (1998). From normal fear to pathological anxiety. Psychological Review, 105, 325350.CrossRefGoogle ScholarPubMed
Silk, J. S., Siegel, G. J., Whalen, D. J., Ostapenko, L. J., Ladouceur, C. D., & Dahl, R. E. (2009). Pubertal changes in emotional information processing: Pupillary, behavioral, and subjective evidence during emotional word identification. Development and Psychopathology, 21, 726.CrossRefGoogle ScholarPubMed
Sisk, C. L., Schulz, K. M., & Zehr, J. L. (2003). Puberty: A finishing school for male social behavior. Annals of the New York Academy of Sciences, 1007, 189198.CrossRefGoogle ScholarPubMed
Sisk, C. L., & Zehr, J. L. (2005). Pubertal hormones organize the adolescent brain and behavior. Frontiers in Neuroendocrinology, 26, 163174.CrossRefGoogle ScholarPubMed
Spear, L. P. (2000). The adolescent brain and age-related behavioral manifestations. Neuroscience and Behavioral Physiology, 24, 417463.CrossRefGoogle ScholarPubMed
Spear, L. P. (2003). Neurodevelopment during adolescence. In Cicchetti, D. & Walker, E. F. (Eds.), Neurodevelopmental mechanisms in psychopathology (pp. 6283). Cambridge: Cambridge University Press.CrossRefGoogle Scholar
Steinberg, L., Dahl, R., Keating, D., Kupfer, D. J., Masten, A. S., & Pine, D. S. (2006). The study of developmental psychopathology in adolescence: Integrating affective neuroscience with the study of context. In Cicchetti, D. & Cohen, D. J. (Eds.), Developmental neuroscience (Vol. 2, pp. 710741). New York: Wiley.Google Scholar
Stroud, L., Foster, E., Handwerger, K., Papandonatos, G. D., Granger, D., Kivlighan, K. T., et al. (2009). Stress response and the adolescent transition: Performance versus peer rejection stress. Development and Psychopathology, 21, 4768.CrossRefGoogle ScholarPubMed
Walker, E. F., Sabuwalla, Z., & Huot, R. (2004). Pubertal neuromaturation, stress sensitivity, and psychopathology. Development and Psychopathology, 16, 807824.CrossRefGoogle ScholarPubMed
Waylen, A., & Wolke, D. (2004). Sex ‘n’ drugs ‘n’ rock ‘n’ roll: The meaning and social consequences of pubertal timing. European Journal of Endocrinology, 151, 151159.CrossRefGoogle Scholar
West, P. (1997). Health inequalities in the early years: Is there equalisation in youth? Social Science & Medicine, 44, 833858.CrossRefGoogle ScholarPubMed
Zehr, J. L., Culbert, K. M., Sisk, C. L., & Klump, K. L. (2007). An association of early puberty with disordered eating and anxiety in a population of undergraduate women and men. Hormones and Behavior, 52, 427435.CrossRefGoogle Scholar