| Literature DB >> 24685177 |
Kambiz N Alavian1, Sharmin Jeddi, Sahar I Naghipour, Pegah Nabili, Pawel Licznerski, Travis S Tierney.
Abstract
Specific vulnerability and degeneration of the dopaminergic neurons in the substantia nigra pars compacta of the midbrain is the pathological hallmark of Parkinson's disease. A number of transcription factors regulate the birth and development of this set of neurons and some remain constitutively expressed throughout life. These maintenance transcription factors are closely associated with essential neurophysiological functions and are required ultimately for the long-term survival of the midbrain dopaminergic neurons. The current review describes the role of two such factors, Nurr1 and engrailed, in differentiation, maturation, and in normal physiological functions including acquisition of neurotransmitter identity. The review will also elucidate the relationship of these factors with life, vulnerability, degeneration and death of mesencephalic dopaminergic neurons in the context of Parkinson's disease.Entities:
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Year: 2014 PMID: 24685177 PMCID: PMC3998737 DOI: 10.1186/1423-0127-21-27
Source DB: PubMed Journal: J Biomed Sci ISSN: 1021-7770 Impact factor: 8.410
Figure 1Signaling pathways involved in regulation of cellular survival and death by engrailed and Nurr1 in mesencephalic dopaminergic neurons. Transcriptional regulation of several survival/death-regulating genes including the pan-neurotrophin receptor P75 and protooncogene Ret, as well as modulation of downstream survival mechanisms, such as MAPK (Erk1/2) by engrailed and Nurr1 leads to the long-term regulation of survival and death of mesDA neurons. Down-regulation of P75 expression by the engrailed genes results in disinhibition of Erk1/2, resulting in survival of mesDA neurons. The effect is similar to the Ret-mediated activation of Erk1/2 by Nurr1. The survival and degeneration pathways regulated by engrailed and Nurr1 converge on mitochondria and are mediated by the anti- and pro-apoptotic members of the Bcl-2 family, Bcl2, Bcl-xL and Bax.