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Published in: BMC Pediatrics 1/2017

Open Access 01-12-2017 | Review

Medical decision-making in children and adolescents: developmental and neuroscientific aspects

Authors: Petronella Grootens-Wiegers, Irma M. Hein, Jos M. van den Broek, Martine C. de Vries

Published in: BMC Pediatrics | Issue 1/2017

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Abstract

Background

Various international laws and guidelines stress the importance of respecting the developing autonomy of children and involving minors in decision-making regarding treatment and research participation. However, no universal agreement exists as to at what age minors should be deemed decision-making competent. Minors of the same age may show different levels of maturity. In addition, patients deemed rational conversation-partners as a child can suddenly become noncompliant as an adolescent. Age, context and development all play a role in decision-making competence. In this article we adopt a perspective on competence that specifically focuses on the impact of brain development on the child’s decision-making process.

Main body

We believe that the discussion on decision-making competence of minors can greatly benefit from a multidisciplinary approach. We adopted such an approach in order to contribute to the understanding on how to deal with children in decision-making situations. Evidence emerging from neuroscience research concerning the developing brain structures in minors is combined with insights from various other fields, such as psychology, decision-making science and ethics. Four capacities have been described that are required for (medical) decision-making: (1) communicating a choice; (2) understanding; (3) reasoning; and (4) appreciation. Each capacity is related to a number of specific skills and abilities that need to be sufficiently developed to support the capacity. Based on this approach it can be concluded that at the age of 12 children can have the capacity to be decision-making competent. However, this age coincides with the onset of adolescence. Early development of the brain’s reward system combined with late development of the control system diminishes decision-making competence in adolescents in specific contexts. We conclude that even adolescents possessing capacities required for decision-making, may need support of facilitating environmental factors.

Conclusion

This paper intends to offer insight in neuroscientific mechanisms underlying the medical decision-making capacities in minors and to stimulate practices for optimal involvement of minors. Developing minors become increasingly capable of decision-making, but the neurobiological development in adolescence affects competence in specific contexts. Adequate support should be offered in order to create a context in which minors can make competently make decisions.
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Literature
1.
go back to reference Unicef: Convention on the Rights of the Child. United Nations, Treaty Series 1577.3 1989. Unicef: Convention on the Rights of the Child. United Nations, Treaty Series 1577.3 1989.
2.
go back to reference EU: Directive 2001/20/EC of the European Parliament and of the Council of 4 April 2001 on the approximation of the laws, regulations and administrative provisions of the member states relating to the implementation of good clinical practice in the conduct of clinical trials on medicinal products for human use. In Official Journal of the European Communities. 2001:34–44. EU: Directive 2001/20/EC of the European Parliament and of the Council of 4 April 2001 on the approximation of the laws, regulations and administrative provisions of the member states relating to the implementation of good clinical practice in the conduct of clinical trials on medicinal products for human use. In Official Journal of the European Communities. 2001:34–44.
4.
go back to reference Mayer RE, Moreno R. Nine ways to reduce cognitive load in multimedia learning. Educ Psychol. 2003;38:43–52.CrossRef Mayer RE, Moreno R. Nine ways to reduce cognitive load in multimedia learning. Educ Psychol. 2003;38:43–52.CrossRef
5.
go back to reference Weithorn LA, Campbell SB. The competency of children and adolescents to make informed treatment decisions. Child Dev. 1982;53:1589–98.CrossRefPubMed Weithorn LA, Campbell SB. The competency of children and adolescents to make informed treatment decisions. Child Dev. 1982;53:1589–98.CrossRefPubMed
6.
go back to reference Mann L, Harmoni R, Power C. Adolescent decision-making: the development of competence. J Adolesc. 1989;12:265–78.CrossRefPubMed Mann L, Harmoni R, Power C. Adolescent decision-making: the development of competence. J Adolesc. 1989;12:265–78.CrossRefPubMed
7.
go back to reference Steinberg L. Does recent research on adolescent brain development inform the mature minor doctrine? J Med Philos. 2013;38:256–67.CrossRefPubMed Steinberg L. Does recent research on adolescent brain development inform the mature minor doctrine? J Med Philos. 2013;38:256–67.CrossRefPubMed
8.
go back to reference Hein IM, Troost PW, Lindeboom R. Accuracy of MacArthur Competence Assessment Tool for measuring children’s competence to consent to clinical research. JAMA Pediatr. 2014;12(168):1147–53.CrossRef Hein IM, Troost PW, Lindeboom R. Accuracy of MacArthur Competence Assessment Tool for measuring children’s competence to consent to clinical research. JAMA Pediatr. 2014;12(168):1147–53.CrossRef
9.
go back to reference Appelbaum PS. Clinical practice. Assessment of patients’ competence to consent to treatment. N Engl J Med. 2007;357:1834–40.CrossRefPubMed Appelbaum PS. Clinical practice. Assessment of patients’ competence to consent to treatment. N Engl J Med. 2007;357:1834–40.CrossRefPubMed
10.
go back to reference Miller VA, Drotar D, Kodish E. Children’s competence for assent and consent: a review of empirical findings. Ethics Behav. 2004;14:255–95.CrossRefPubMed Miller VA, Drotar D, Kodish E. Children’s competence for assent and consent: a review of empirical findings. Ethics Behav. 2004;14:255–95.CrossRefPubMed
11.
go back to reference Grisso T, Appelbaum PS, Hill-Fotouhi C. The MacCAT-T: a clinical tool to assess patients’ capacities to make treatment decisions. Psychiatr Serv. 1997;48:1415–9.CrossRefPubMed Grisso T, Appelbaum PS, Hill-Fotouhi C. The MacCAT-T: a clinical tool to assess patients’ capacities to make treatment decisions. Psychiatr Serv. 1997;48:1415–9.CrossRefPubMed
12.
go back to reference Appelbaum PS, Roth LH. Competency to consent to research: a psychiatric overview. Arch Gen Psychiatry. 1982;39:951–8.CrossRefPubMed Appelbaum PS, Roth LH. Competency to consent to research: a psychiatric overview. Arch Gen Psychiatry. 1982;39:951–8.CrossRefPubMed
13.
go back to reference Appelbaum PS, Grisso T. The MacArthur Competence Assessment Tool for Clinical Research (MacCAT-CR). Sarasota: Professional Resource Press; 2001. Appelbaum PS, Grisso T. The MacArthur Competence Assessment Tool for Clinical Research (MacCAT-CR). Sarasota: Professional Resource Press; 2001.
14.
go back to reference Ganzini L, Volicer L, Nelson WA, Fox E, Derse AR. Ten myths about decision-making capacity. J Am Med Dir Assoc. 2004;5:263–7.CrossRefPubMed Ganzini L, Volicer L, Nelson WA, Fox E, Derse AR. Ten myths about decision-making capacity. J Am Med Dir Assoc. 2004;5:263–7.CrossRefPubMed
15.
go back to reference Bolt IL, van Summeren MJ. Competence assessment in minors, illustrated by the case of bariatric surgery for morbidly obese children. Best Pract Res Clin Gastroenterol. 2014;28:293–302.CrossRefPubMed Bolt IL, van Summeren MJ. Competence assessment in minors, illustrated by the case of bariatric surgery for morbidly obese children. Best Pract Res Clin Gastroenterol. 2014;28:293–302.CrossRefPubMed
16.
go back to reference Marson DC, Ingram KK, Cody HA, Harrell LE. Assessing the competency of patients with Alzheimer’s disease under different legal standards. A prototype instrument. Arch Neurol. 1995;52:949–54.CrossRefPubMed Marson DC, Ingram KK, Cody HA, Harrell LE. Assessing the competency of patients with Alzheimer’s disease under different legal standards. A prototype instrument. Arch Neurol. 1995;52:949–54.CrossRefPubMed
18.
19.
go back to reference Schaeffer MH, Krantz DS, Wichman A, Masur H, Reed E, Vinicky JK. The impact of disease severity on the informed consent process in clinical research. Am J Med. 1996;100:261–8.CrossRefPubMed Schaeffer MH, Krantz DS, Wichman A, Masur H, Reed E, Vinicky JK. The impact of disease severity on the informed consent process in clinical research. Am J Med. 1996;100:261–8.CrossRefPubMed
20.
go back to reference Hein IM, Troost PW, Lindeboom R, de Vries MC, Zwaan CM, Lindauer RJ. Assessing children’s competence to consent in research by a standardized tool: a validity study. BMC Pediatr. 2012;12:156.CrossRefPubMedPubMedCentral Hein IM, Troost PW, Lindeboom R, de Vries MC, Zwaan CM, Lindauer RJ. Assessing children’s competence to consent in research by a standardized tool: a validity study. BMC Pediatr. 2012;12:156.CrossRefPubMedPubMedCentral
21.
go back to reference Rosenbloom MH, Schmahmann JD, Price BH. The functional neuroanatomy of decision-making. J Neuropsychiatry Clin Neurosci. 2012;24:266–77.CrossRefPubMed Rosenbloom MH, Schmahmann JD, Price BH. The functional neuroanatomy of decision-making. J Neuropsychiatry Clin Neurosci. 2012;24:266–77.CrossRefPubMed
22.
go back to reference Steinberg L. Risk taking in adolescence: what changes, and why? Ann N Y Acad Sci. 2004;1021:51–8.CrossRefPubMed Steinberg L. Risk taking in adolescence: what changes, and why? Ann N Y Acad Sci. 2004;1021:51–8.CrossRefPubMed
24.
go back to reference Appelbaum PS, Grisso T. Assessing patients’ capacities to consent to treatment. N Engl J Med. 1988;319:1635–8.CrossRefPubMed Appelbaum PS, Grisso T. Assessing patients’ capacities to consent to treatment. N Engl J Med. 1988;319:1635–8.CrossRefPubMed
25.
go back to reference Shaffer D, Kipp K. Developmental psychology. Belmont: Thomson Wadsworth; 2007. Shaffer D, Kipp K. Developmental psychology. Belmont: Thomson Wadsworth; 2007.
26.
go back to reference Reed J, Warner-Rogers J, editors. Child Neuropsychology; Concept, Theory and Practice. Oxford: Wiley-Blackwell; 2008. Reed J, Warner-Rogers J, editors. Child Neuropsychology; Concept, Theory and Practice. Oxford: Wiley-Blackwell; 2008.
27.
go back to reference Rueda MR, Fan J, McCandliss BD, Halparin JD, Gruber DB, Lercari LP, Posner MI. Development of attentional networks in childhood. Neuropsychologia. 2004;42:1029–40.CrossRefPubMed Rueda MR, Fan J, McCandliss BD, Halparin JD, Gruber DB, Lercari LP, Posner MI. Development of attentional networks in childhood. Neuropsychologia. 2004;42:1029–40.CrossRefPubMed
28.
go back to reference Waszak F, Li SC, Hommel B. The development of attentional networks: cross-sectional findings from a life span sample. Dev Psychol. 2010;46:337–49.CrossRefPubMed Waszak F, Li SC, Hommel B. The development of attentional networks: cross-sectional findings from a life span sample. Dev Psychol. 2010;46:337–49.CrossRefPubMed
29.
go back to reference Guillery-Girard B, Martins S, Deshayes S, Hertz-Pannier L, Chiron C, Jambaque I, Landeau B, Clochon P, Chetelat G, Eustache F. Developmental trajectories of associative memory from childhood to adulthood: a behavioral and neuroimaging study. Front Behav Neurosci. 2013;7:126.CrossRefPubMedPubMedCentral Guillery-Girard B, Martins S, Deshayes S, Hertz-Pannier L, Chiron C, Jambaque I, Landeau B, Clochon P, Chetelat G, Eustache F. Developmental trajectories of associative memory from childhood to adulthood: a behavioral and neuroimaging study. Front Behav Neurosci. 2013;7:126.CrossRefPubMedPubMedCentral
30.
go back to reference Thaler NS, Goldstein G, Pettegrew JW, Luther JF, Reynolds CR, Allen DN. Developmental aspects of working and associative memory. Arch Clin Neuropsychol. 2013;28:348–55.CrossRefPubMed Thaler NS, Goldstein G, Pettegrew JW, Luther JF, Reynolds CR, Allen DN. Developmental aspects of working and associative memory. Arch Clin Neuropsychol. 2013;28:348–55.CrossRefPubMed
31.
go back to reference Rhodes SM, Murphy D, Hancock PJ. Developmental changes in the engagement of episodic retrieval processes and their relationship with working memory during the period of middle childhood. Br J Dev Psychol. 2011;29:865–82.CrossRefPubMed Rhodes SM, Murphy D, Hancock PJ. Developmental changes in the engagement of episodic retrieval processes and their relationship with working memory during the period of middle childhood. Br J Dev Psychol. 2011;29:865–82.CrossRefPubMed
32.
go back to reference Sprondel V, Kipp KH, Mecklinger A. Developmental changes in item and source memory: evidence from an ERP recognition memory study with children, adolescents, and adults. Child Dev. 2011;82:1638–953.CrossRefPubMed Sprondel V, Kipp KH, Mecklinger A. Developmental changes in item and source memory: evidence from an ERP recognition memory study with children, adolescents, and adults. Child Dev. 2011;82:1638–953.CrossRefPubMed
33.
go back to reference Czernochowski D, Mecklinger A, Johansson M. Age-related changes in the control of episodic retrieval: an ERP study of recognition memory in children and adults. Dev Sci. 2009;12:1026–40.CrossRefPubMed Czernochowski D, Mecklinger A, Johansson M. Age-related changes in the control of episodic retrieval: an ERP study of recognition memory in children and adults. Dev Sci. 2009;12:1026–40.CrossRefPubMed
34.
go back to reference Markovits H. The development of abstract conditional reasoning. In: Barrouillet P, Gauffroy C, editors. The development of thinking and reasoning. London: Psychology Press; 2013. p. 71–94. Markovits H. The development of abstract conditional reasoning. In: Barrouillet P, Gauffroy C, editors. The development of thinking and reasoning. London: Psychology Press; 2013. p. 71–94.
35.
go back to reference Pillow BH, Pearson RM, Hecht M, Bremer A. Children’s and adults’ judgments of the certainty of deductive inferences, inductive inferences, and guesses. J Genet Psychol. 2010;171:203–17.CrossRefPubMed Pillow BH, Pearson RM, Hecht M, Bremer A. Children’s and adults’ judgments of the certainty of deductive inferences, inductive inferences, and guesses. J Genet Psychol. 2010;171:203–17.CrossRefPubMed
36.
go back to reference Markovits H, Fleury ML, Quinn S, Venet M. The development of conditional reasoning and the structure of semantic memory. Child Dev. 1998;69:742–55.CrossRefPubMed Markovits H, Fleury ML, Quinn S, Venet M. The development of conditional reasoning and the structure of semantic memory. Child Dev. 1998;69:742–55.CrossRefPubMed
37.
go back to reference Hillier LM, Morrongiello BA. Age and gender differences in school-age children’s appraisals of injury risk. J Pediatr Psychol. 1998;23:229–38.CrossRefPubMed Hillier LM, Morrongiello BA. Age and gender differences in school-age children’s appraisals of injury risk. J Pediatr Psychol. 1998;23:229–38.CrossRefPubMed
38.
go back to reference Halpern-Felscher BL, Cauffman E. Costs and benefits of a decision. Decision-making competence in adolescents and adults. Appl Dev Psychol. 2001;22:257–73.CrossRef Halpern-Felscher BL, Cauffman E. Costs and benefits of a decision. Decision-making competence in adolescents and adults. Appl Dev Psychol. 2001;22:257–73.CrossRef
40.
41.
go back to reference Pike MM, Barnes MA, Barron RW. The role of illustrations in children’s inferential comprehension. J Exp Child Psychol. 2010;105:243–55.CrossRefPubMed Pike MM, Barnes MA, Barron RW. The role of illustrations in children’s inferential comprehension. J Exp Child Psychol. 2010;105:243–55.CrossRefPubMed
42.
go back to reference Steinbeck K, Towns S, Bennett D. Adolescent and young adult medicine is a special and specific area of medical practice. J Paediatr Child Health. 2014;50:427–31.CrossRefPubMed Steinbeck K, Towns S, Bennett D. Adolescent and young adult medicine is a special and specific area of medical practice. J Paediatr Child Health. 2014;50:427–31.CrossRefPubMed
43.
go back to reference Dahl RE. Adolescent brain development: a period of vulnerabilities and opportunities. Keynote address. Ann N Y Acad Sci. 2004;1021:1–22.CrossRefPubMed Dahl RE. Adolescent brain development: a period of vulnerabilities and opportunities. Keynote address. Ann N Y Acad Sci. 2004;1021:1–22.CrossRefPubMed
44.
go back to reference Braams BR, Van Leijenhorst L, Crone EA. Risks, Rewards, and the Developing Brain in Childhood and Adolescence. In: Reyna VF, Zayas V, editors. The neuroscience of risky decision making. Washington DC: American Psychological Association; 2014. Braams BR, Van Leijenhorst L, Crone EA. Risks, Rewards, and the Developing Brain in Childhood and Adolescence. In: Reyna VF, Zayas V, editors. The neuroscience of risky decision making. Washington DC: American Psychological Association; 2014.
45.
go back to reference Crone EA. Het puberende brein. The Netherlands: Bert Bakker; 2008. Crone EA. Het puberende brein. The Netherlands: Bert Bakker; 2008.
46.
go back to reference Steinberg L. A behavioral scientist looks at the science of adolescent brain development. Brain Cogn. 2010;72:160–4.CrossRefPubMed Steinberg L. A behavioral scientist looks at the science of adolescent brain development. Brain Cogn. 2010;72:160–4.CrossRefPubMed
48.
go back to reference Blakemore SJ, Robbins TW. Decision-making in the adolescent brain. Nat Neurosci. 2012;15:1184–91.CrossRefPubMed Blakemore SJ, Robbins TW. Decision-making in the adolescent brain. Nat Neurosci. 2012;15:1184–91.CrossRefPubMed
49.
go back to reference Van Leijenhorst L, Zanolie K, Van Meel CS, Westenberg PM, Rombouts SA, Crone EA. What motivates the adolescent? Brain regions mediating reward sensitivity across adolescence. Cereb Cortex. 2010;20:61–9.CrossRefPubMed Van Leijenhorst L, Zanolie K, Van Meel CS, Westenberg PM, Rombouts SA, Crone EA. What motivates the adolescent? Brain regions mediating reward sensitivity across adolescence. Cereb Cortex. 2010;20:61–9.CrossRefPubMed
51.
go back to reference Gogtay N, Giedd JN, Lusk L, Hayashi KM, Greenstein D, Vaituzis AC, Nugent 3rd TF, Herman DH, Clasen LS, Toga AW, et al. Dynamic mapping of human cortical development during childhood through early adulthood. Proc Natl Acad Sci U S A. 2004;101:8174–9.CrossRefPubMedPubMedCentral Gogtay N, Giedd JN, Lusk L, Hayashi KM, Greenstein D, Vaituzis AC, Nugent 3rd TF, Herman DH, Clasen LS, Toga AW, et al. Dynamic mapping of human cortical development during childhood through early adulthood. Proc Natl Acad Sci U S A. 2004;101:8174–9.CrossRefPubMedPubMedCentral
52.
go back to reference Mills KL, Goddings AL, Clasen LS, Giedd JN, Blakemore SJ. The developmental mismatch in structural brain maturation during adolescence. Dev Neurosci. 2014;36:147–60.CrossRefPubMed Mills KL, Goddings AL, Clasen LS, Giedd JN, Blakemore SJ. The developmental mismatch in structural brain maturation during adolescence. Dev Neurosci. 2014;36:147–60.CrossRefPubMed
53.
go back to reference Crone EA, Dahl RE. Understanding adolescence as a period of social-affective engagement and goal flexibility. Nat Rev Neurosci. 2012;13:636–50.CrossRefPubMed Crone EA, Dahl RE. Understanding adolescence as a period of social-affective engagement and goal flexibility. Nat Rev Neurosci. 2012;13:636–50.CrossRefPubMed
54.
55.
go back to reference Blakemore SJ, Mills KL. Is adolescence a sensitive period for sociocultural processing? Annu Rev Psychol. 2014;65:187–207.CrossRefPubMed Blakemore SJ, Mills KL. Is adolescence a sensitive period for sociocultural processing? Annu Rev Psychol. 2014;65:187–207.CrossRefPubMed
56.
go back to reference Albert D, Chein J, Steinberg L. The teenage brain: influences on adolescent decision making. Curr Dir Psychol. 2013;22:114–20.CrossRef Albert D, Chein J, Steinberg L. The teenage brain: influences on adolescent decision making. Curr Dir Psychol. 2013;22:114–20.CrossRef
57.
go back to reference Fischhoff B, Bruine de Bruin W, Parker AM, Millstein SG, Halpern-Felsher BL. Adolescents’ perceived risk of dying. J Adolesc Health. 2010;46:265–9.CrossRefPubMed Fischhoff B, Bruine de Bruin W, Parker AM, Millstein SG, Halpern-Felsher BL. Adolescents’ perceived risk of dying. J Adolesc Health. 2010;46:265–9.CrossRefPubMed
58.
go back to reference Galvan A. Insights about adolescent behavior, plasticity, and policy from neuroscience research. Neuron. 2014;83:262–5.CrossRefPubMed Galvan A. Insights about adolescent behavior, plasticity, and policy from neuroscience research. Neuron. 2014;83:262–5.CrossRefPubMed
59.
go back to reference Martenson EK, Fagerskiold AM. A review of children’s decision-making competence in health care. J Clin Nurs. 2008;17:3131–41.CrossRefPubMed Martenson EK, Fagerskiold AM. A review of children’s decision-making competence in health care. J Clin Nurs. 2008;17:3131–41.CrossRefPubMed
60.
go back to reference De Lourdes LM, Larcher V, Kurz R. Informed consent/assent in children. Statement of the Ethics Working Group of the Confederation of European Specialists in Paediatrics (CESP). Eur J Pediatr. 2003;162:629–33.CrossRef De Lourdes LM, Larcher V, Kurz R. Informed consent/assent in children. Statement of the Ethics Working Group of the Confederation of European Specialists in Paediatrics (CESP). Eur J Pediatr. 2003;162:629–33.CrossRef
61.
go back to reference Kurz R, Gill D, Mjones S. Ethical issues in the daily medical care of children. Eur J Pediatr. 2006;165:83–6.CrossRefPubMed Kurz R, Gill D, Mjones S. Ethical issues in the daily medical care of children. Eur J Pediatr. 2006;165:83–6.CrossRefPubMed
62.
go back to reference Gill D, Crawley FP, LoGiudice M, Grosek S, Kurz R, de Lourdes-Levy M, Mjones S, Nicolopoulos D, Rubino A, Sauer PJ, et al. Guidelines for informed consent in biomedical research involving paediatric populations as research participants. Eur J Pediatr. 2003;162:455–8.CrossRefPubMed Gill D, Crawley FP, LoGiudice M, Grosek S, Kurz R, de Lourdes-Levy M, Mjones S, Nicolopoulos D, Rubino A, Sauer PJ, et al. Guidelines for informed consent in biomedical research involving paediatric populations as research participants. Eur J Pediatr. 2003;162:455–8.CrossRefPubMed
63.
go back to reference de Vries MC, van Leeuwen E. Ethics of medical scientific research: informed consent and the therapeutic misconception. Ned Tijdschr Geneeskd. 2008;152(12):679–83. de Vries MC, van Leeuwen E. Ethics of medical scientific research: informed consent and the therapeutic misconception. Ned Tijdschr Geneeskd. 2008;152(12):679–83.
64.
go back to reference Alderson P. Competent children? Minors’ consent to health care treatment and research. Soc Sci Med. 2007;65:2272–83.CrossRefPubMed Alderson P. Competent children? Minors’ consent to health care treatment and research. Soc Sci Med. 2007;65:2272–83.CrossRefPubMed
65.
go back to reference Bos W, Tromp K, Tibboel D, Pinxten W. Ethical aspects of clinical research with minors. Eur J Pediatr. 2013;172:859–66.CrossRefPubMed Bos W, Tromp K, Tibboel D, Pinxten W. Ethical aspects of clinical research with minors. Eur J Pediatr. 2013;172:859–66.CrossRefPubMed
66.
go back to reference Nolen-Hoeksema S, Fredrickson BL, Loftus GR, Wagenaar WA. Atkinson & Hilgard’s Introduction to Psychology. 15th ed. Hampshire: Wadsworth Cengage Learning; 2009. Nolen-Hoeksema S, Fredrickson BL, Loftus GR, Wagenaar WA. Atkinson & Hilgard’s Introduction to Psychology. 15th ed. Hampshire: Wadsworth Cengage Learning; 2009.
67.
68.
go back to reference Brauer J, Anwander A, Friederici AD. Neuroanatomical prerequisites for language functions in the maturing brain. Cereb Cortex. 2011;21:459–66.CrossRefPubMed Brauer J, Anwander A, Friederici AD. Neuroanatomical prerequisites for language functions in the maturing brain. Cereb Cortex. 2011;21:459–66.CrossRefPubMed
69.
go back to reference Posner MI, Petersen SE. The attention system of the human brain. Annu Rev Neurosci. 1990;13:25–42.CrossRefPubMed Posner MI, Petersen SE. The attention system of the human brain. Annu Rev Neurosci. 1990;13:25–42.CrossRefPubMed
71.
go back to reference Anderson P. Assessment and development of executive function (EF) during childhood. Child Neuropsychol. 2002;8:71–82.CrossRefPubMed Anderson P. Assessment and development of executive function (EF) during childhood. Child Neuropsychol. 2002;8:71–82.CrossRefPubMed
72.
go back to reference Mezzacappa E. Alerting, orienting, and executive attention: developmental properties and sociodemographic correlates in an epidemiological sample of young, urban children. Child Dev. 2004;75:1373–86.CrossRefPubMed Mezzacappa E. Alerting, orienting, and executive attention: developmental properties and sociodemographic correlates in an epidemiological sample of young, urban children. Child Dev. 2004;75:1373–86.CrossRefPubMed
73.
74.
go back to reference Rueda MR, Rothbart MK, McCandliss BD, Saccomanno L, Posner MI. Training, maturation, and genetic influences on the development of executive attention. Proc Natl Acad Sci U S A. 2005;102:14931–6.CrossRefPubMedPubMedCentral Rueda MR, Rothbart MK, McCandliss BD, Saccomanno L, Posner MI. Training, maturation, and genetic influences on the development of executive attention. Proc Natl Acad Sci U S A. 2005;102:14931–6.CrossRefPubMedPubMedCentral
75.
go back to reference Dionne J, Cadoret G. Development of active controlled retrieval during middle childhood. Dev Psychobiol. 2013;55:443–9.CrossRefPubMed Dionne J, Cadoret G. Development of active controlled retrieval during middle childhood. Dev Psychobiol. 2013;55:443–9.CrossRefPubMed
76.
go back to reference Goldstein G, Allen DN, Thaler NS, Luther JF, Panchalingam K, Pettegrew JW. Developmental aspects and neurobiological correlates of working and associative memory. Neuropsychology. 2014;28:496–505.CrossRefPubMed Goldstein G, Allen DN, Thaler NS, Luther JF, Panchalingam K, Pettegrew JW. Developmental aspects and neurobiological correlates of working and associative memory. Neuropsychology. 2014;28:496–505.CrossRefPubMed
77.
go back to reference Parsons LM, Osherson D. New evidence for distinct right and left brain Systems for deductive versus probabilistic reasoning. Cereb Cortex. 2001;11:954–65.CrossRefPubMed Parsons LM, Osherson D. New evidence for distinct right and left brain Systems for deductive versus probabilistic reasoning. Cereb Cortex. 2001;11:954–65.CrossRefPubMed
78.
go back to reference Verschueren N, Schaeken W, d’Ydewalle G. Everyday conditional reasoning: a working memory-dependent tradeoff between counterexample and likelihood use. Mem Cognit. 2005;33:107–19.CrossRefPubMed Verschueren N, Schaeken W, d’Ydewalle G. Everyday conditional reasoning: a working memory-dependent tradeoff between counterexample and likelihood use. Mem Cognit. 2005;33:107–19.CrossRefPubMed
79.
go back to reference Reyna VF, Brainerd CJ. Dual processes in decision making and developmental neuroscience: a fuzzy-trace model. Dev Rev. 2011;31:180–206.PubMedPubMedCentral Reyna VF, Brainerd CJ. Dual processes in decision making and developmental neuroscience: a fuzzy-trace model. Dev Rev. 2011;31:180–206.PubMedPubMedCentral
80.
go back to reference Pillow BH, Hill V, Boyce A, Stein C. Understanding inference as a source of knowledge: children’s ability to evaluate the certainty of deduction, perception, and guessing. Dev Psychol. 2000;36:169–79.CrossRefPubMed Pillow BH, Hill V, Boyce A, Stein C. Understanding inference as a source of knowledge: children’s ability to evaluate the certainty of deduction, perception, and guessing. Dev Psychol. 2000;36:169–79.CrossRefPubMed
81.
go back to reference Pillow BH. Children’s and adults’ evaluation of the certainty of deductive inferences, inductive inferences, and guesses. Child Dev. 2002;73:779–92.CrossRefPubMed Pillow BH. Children’s and adults’ evaluation of the certainty of deductive inferences, inductive inferences, and guesses. Child Dev. 2002;73:779–92.CrossRefPubMed
82.
go back to reference Markovits H, Thompson V. Different developmental patterns of simple deductive and probabilistic inferential reasoning. Mem Cognit. 2008;36:1066–78.CrossRefPubMed Markovits H, Thompson V. Different developmental patterns of simple deductive and probabilistic inferential reasoning. Mem Cognit. 2008;36:1066–78.CrossRefPubMed
83.
84.
go back to reference Cohen MX, Heller AS, Ranganath C. Functional connectivity with anterior cingulate and orbitofrontal cortices during decision-making. Cogn Brain Res. 2005;23:61–70.CrossRef Cohen MX, Heller AS, Ranganath C. Functional connectivity with anterior cingulate and orbitofrontal cortices during decision-making. Cogn Brain Res. 2005;23:61–70.CrossRef
85.
go back to reference Morrongiello BA, Rennie H. Why do boys engage in more risk taking than girls? The role of attributions, beliefs, and risk appraisals. J Pediatr Psychol. 1998;23:33–43.CrossRefPubMed Morrongiello BA, Rennie H. Why do boys engage in more risk taking than girls? The role of attributions, beliefs, and risk appraisals. J Pediatr Psychol. 1998;23:33–43.CrossRefPubMed
86.
go back to reference Korkmaz B. Theory of mind and neurodevelopmental disorders of childhood. Pediatr Res. 2011;69:101R–8R.CrossRefPubMed Korkmaz B. Theory of mind and neurodevelopmental disorders of childhood. Pediatr Res. 2011;69:101R–8R.CrossRefPubMed
87.
88.
go back to reference Schwanenflugel PJ, Henderson RL, Fabricius WV. Developing organization of mental verbs and theory of mind in middle childhood: evidence from extensions. Dev Psychol. 1998;34:512–24.CrossRefPubMed Schwanenflugel PJ, Henderson RL, Fabricius WV. Developing organization of mental verbs and theory of mind in middle childhood: evidence from extensions. Dev Psychol. 1998;34:512–24.CrossRefPubMed
Metadata
Title
Medical decision-making in children and adolescents: developmental and neuroscientific aspects
Authors
Petronella Grootens-Wiegers
Irma M. Hein
Jos M. van den Broek
Martine C. de Vries
Publication date
01-12-2017
Publisher
BioMed Central
Published in
BMC Pediatrics / Issue 1/2017
Electronic ISSN: 1471-2431
DOI
https://doi.org/10.1186/s12887-017-0869-x

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