TY - JOUR
T1 - Parental THC exposure leads to compulsive heroin-seeking and altered striatal synaptic plasticity in the subsequent generation
AU - Szutorisz, Henrietta
AU - DiNieri, Jennifer A.
AU - Sweet, Eric
AU - Egervari, Gabor
AU - Michaelides, Michael
AU - Carter, Jenna M.
AU - Ren, Yanhua
AU - Miller, Michael L.
AU - Blitzer, Robert D.
AU - Hurd, Yasmin L.
N1 - Funding Information:
Our research was supported by NIH grants DA030359 and DA033660. The authors declare no conflict of interest.
PY - 2014/5
Y1 - 2014/5
N2 - Recent attention has been focused on the long-term impact of cannabis exposure, for which experimental animal studies have validated causal relationships between neurobiological and behavioral alterations during the individual's lifetime. Here, we show that adolescent exposure to Δ9-tetrahydrocannabinol (THC), the main psychoactive component of cannabis, results in behavioral and neurobiological abnormalities in the subsequent generation of rats as a consequence of parental germline exposure to the drug. Adult F1 offspring that were themselves unexposed to THC displayed increased work effort to self-administer heroin, with enhanced stereotyped behaviors during the period of acute heroin withdrawal. On the molecular level, parental THC exposure was associated with changes in the mRNA expression of cannabinoid, dopamine, and glutamatergic receptor genes in the striatum, a key component of the neuronal circuitry mediating compulsive behaviors and reward sensitivity. Specifically, decreased mRNA and protein levels, as well as NMDA receptor binding were observed in the dorsal striatum of adult offspring as a consequence of germline THC exposure. Electrophysiologically, plasticity was altered at excitatory synapses of the striatal circuitry that is known to mediate compulsive and goal-directed behaviors. These findings demonstrate that parental history of germline THC exposure affects the molecular characteristics of the striatum, can impact offspring phenotype, and could possibly confer enhanced risk for psychiatric disorders in the subsequent generation.
AB - Recent attention has been focused on the long-term impact of cannabis exposure, for which experimental animal studies have validated causal relationships between neurobiological and behavioral alterations during the individual's lifetime. Here, we show that adolescent exposure to Δ9-tetrahydrocannabinol (THC), the main psychoactive component of cannabis, results in behavioral and neurobiological abnormalities in the subsequent generation of rats as a consequence of parental germline exposure to the drug. Adult F1 offspring that were themselves unexposed to THC displayed increased work effort to self-administer heroin, with enhanced stereotyped behaviors during the period of acute heroin withdrawal. On the molecular level, parental THC exposure was associated with changes in the mRNA expression of cannabinoid, dopamine, and glutamatergic receptor genes in the striatum, a key component of the neuronal circuitry mediating compulsive behaviors and reward sensitivity. Specifically, decreased mRNA and protein levels, as well as NMDA receptor binding were observed in the dorsal striatum of adult offspring as a consequence of germline THC exposure. Electrophysiologically, plasticity was altered at excitatory synapses of the striatal circuitry that is known to mediate compulsive and goal-directed behaviors. These findings demonstrate that parental history of germline THC exposure affects the molecular characteristics of the striatum, can impact offspring phenotype, and could possibly confer enhanced risk for psychiatric disorders in the subsequent generation.
KW - addiction
KW - cannabis
KW - cross-generational transmission
KW - development
KW - striatum
KW - synaptic plasticity
UR - http://www.scopus.com/inward/record.url?scp=84900791580&partnerID=8YFLogxK
U2 - 10.1038/npp.2013.352
DO - 10.1038/npp.2013.352
M3 - Article
C2 - 24385132
AN - SCOPUS:84900791580
SN - 0893-133X
VL - 39
SP - 1315
EP - 1323
JO - Neuropsychopharmacology
JF - Neuropsychopharmacology
IS - 6
ER -