4.7 Article

Prenatal dexamethasone exposure alters effort decision making and triggers nucleus accumbens and anterior cingulate cortex functional changes in male rats

期刊

TRANSLATIONAL PSYCHIATRY
卷 12, 期 1, 页码 -

出版社

SPRINGERNATURE
DOI: 10.1038/s41398-022-02043-4

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资金

  1. Portuguese Foundation for Science and Technology (FCT) [SFRH/BD/147066/2019]
  2. FCT [CEECIND/03887/2017, CEECIND/03898/2020, CEECIND/00922/2018, PTDC/MED-NEU/29071/2017, PTDC/MED-NEU/4804/2020]
  3. Bial Foundation [30/2016, 175/2020]
  4. la Caixa Foundation [100010434, LCF/PR/HR20/52400020]
  5. European Research Council (ERC) [101003187]
  6. National funds, through the FCT [UIDB/50026/2020, UIDP/50026/2020]
  7. ICVS Scientific Microscopy Platform, member of the national infrastructure PPBI - Portuguese Platform of Bioimaging [PPBI-POCI-01-0145-FEDER-022122]
  8. Fundação para a Ciência e a Tecnologia [SFRH/BD/147066/2019, PTDC/MED-NEU/29071/2017, PTDC/MED-NEU/4804/2020] Funding Source: FCT
  9. European Research Council (ERC) [101003187] Funding Source: European Research Council (ERC)

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In utero exposure to synthetic glucocorticoids leads to motivation and decision-making deficits associated with dysfunctional ACC-NAc circuit.
Daily, individuals select actions based on cost-benefit to allocate resources into goal-directed actions. Different brain regions coordinate this complex decision, including the nucleus accumbens (NAc), anterior cingulate cortex (ACC), and ventral tegmental area (VTA). In utero exposure to synthetic glucocorticoids (iuGC), such as dexamethasone, triggers prominent motivation deficits but the impact of this exposure in the ACC-NAc and/or ACC-VTA circuits is unknown. Here, we show that iuGC exposure causes decreased motivation for natural rewards (food) and impaired effort-based decision-making. Importantly, reduced neuronal activation (number of c-fos(+) neurons) was observed in the NAc core and ACC of iuGC rats in comparison to CTR rats after performing the effort-based decision-making task. In addition, iuGC treatment led to increased NAc and ACC basal neuronal activity. Electrophysiological recordings during optogenetic modulation of ACC terminals in the NAc revealed that the ACC-NAc circuit is dysfunctional in iuGC animals. These data suggest that iuGC animals present motivational and effort-based decision-making deficits that can be associated with the observed ACC-NAc dysfunction.

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