4.6 Review

Dopaminergic Neurons and Brain Reward Pathways From Neurogenesis to Circuit Assembly

Journal

AMERICAN JOURNAL OF PATHOLOGY
Volume 186, Issue 3, Pages 478-488

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.ajpath.2015.09.023

Keywords

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Categories

Funding

  1. NIH [OD010927, OD011915]
  2. Department of Veterans Affairs [BX001108, BX001625]
  3. Singapore Agency for Science, Technology, and Research (A*STAR) Scholar Program
  4. University of California San Francisco Graduate Education in Medical Sciences (GEMS) Scholar Award

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Midbrain dopaminergic (DA) neurons in the substantia nigra pars compacta and ventral tegmental area regulate extrapyramidal movement and important cognitive functions, including motivation, reward associations, and habit learning. Dysfunctions in DA neuron circuitry have been implicated in several neuropsychiatric disorders, including addiction and schizophrenia, whereas selective degeneration of DA neurons in substantia nigra pars compacta is a key neuropathological feature in Parkinson disease. Efforts to understand these disorders have focused on dissecting the underlying causes, as well as developing therapeutic strategies to replenish dopamine deficiency. In particular, the promise of cell replacement therapies for clinical intervention has led to extensive research in the identification of mechanisms involved in DA neuron development. It is hoped that a comprehensive understanding of these mechanisms will Lead to therapeutic strategies that improve the efficiency of DA neuron production, engraftment, and function. This review provides a comprehensive discussion on how Wnta-catenin and sonic hedgehog Smoothened signaling mechanisms control the specification and expansion of DA progenitors and the differentiation of DA neurons. We also discuss how mechanisms involving transforming growth factor-beta and transcriptional cofactor homeodomain interacting protein kinase 2 regulate the survival and maturation of DA neurons in early postnatal life. These results not only reveal fundamental mechanisms regulating DA neuron development, but also provide important insights to their potential contributions to neuropsychiatric and neurodegenerative diseases.

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