Search bioRxiv⌕ Search

Biology subjects

Kolb, B.

Publications and source records attributed to Kolb, B..

4 recordsLinked to original sources

Amphetamine disrupts dopamine axon growth in adolescence by a sex-specific mechanism

Initiating drug use during adolescence increases the risk of developing addiction and psychiatric disorders later in life, with long-term outcomes varying according to sex and exact timing of use. Even though most individuals begin experimenting with drugs of abuse in adolescence, to date, the cellular and molecular underpinnings explaining differential sensitivity to detrimental drug effects remain unknown. The Netrin-1/DCC guidance cue system plays a critical role in the adolescent development of mesocorticolimbic dopamine circuitry, segregating the cortical and limbic pathways. Adolescent experiences, including exposure to drugs of abuse, can regulate Dcc expression in male mice, placing Netrin-1/DCC signaling as a potential molecular link between experience and enduring changes to circuitry and behavior. Here we show that exposure to a recreational-like regimen of amphetamine (AMPH) in adolescence induces sex- and age-specific alterations in Dcc expression in the ventral tegmental area. Female mice are protected against the deleterious long-term effects of AMPH-induced Dcc regulation by compensatory changes in the expression of its binding partner, Netrin-1. AMPH induces targeting errors in mesolimbic dopamine axons and triggers their ectopic growth to the prefrontal cortex, only in early-adolescent male mice, underlying a male-specific vulnerability to its enduring cognitive effects. Upregulating DCC receptor expression in dopamine neurons in adolescent males using a neuron-optimized CRISPR/dCas9 Activation System induces female-like protection against the persistent effects of AMPH in early adolescence on inhibitory control. Netrin-1/DCC signaling is therefore a molecular switch which can be differentially regulated in response to the same experience as function of age and sex of the individual, leading to divergent long-term outcomes associated with vulnerable or resilient phenotypes.

neuroscience↗

Functional recovery from tactile stimulation after perinatal cortical injury is mediated by FGF-2

The consequences of perinatal brain injury can be devastating but currently there are few effective treatments. We sought to determine if tactile stimulation (TS) or exogenous application of fibroblast growth factor-2 (FGF-2) following injury could reverse the behavioral loss. Infant rats received frontal cortex removals on postnatal day 4 (P4) or a sham surgery. The TS animals received thrice-daily 15-minute bouts of stimulation (Experiment 1) on the day following surgery until weaning. In Experiment 2, treated animals received subcutaneous injections of FGF-2 once daily for one week, postsurgery. Behavioral testing began on postnatal day 60. Brains were later processed for Golgi analysis. We show in Experiment 1, that tactilely stimulating infant rats with perinatal cortical injury stimulates functional recovery and reverses injury-related changes in neuronal morphology in the cerebral cortex. The TS induction of recovery is associated with changes in expression of FGF-2 in both the skin and brain. Direct administration of FGF-2 (Experiment 2) is also effective in facilitating recovery, although not as completely as TS. These results suggest that early behavioral intervention after perinatal cortical injury can stimulate plastic neuronal changes that can underlie functional recovery and that these changes are mediated, in part, through an upregulation of FGF-2.

neuroscience↗

Tactile Stimulation Improves Cognition, Motor, and Anxiety-Like Behaviours and Attenuates the AD Pathology in Adult APP NL-G-F/NL-G-F mice

Alzheimers Disease (AD) is one of the largest health crises in the world. There are, however, limited but expensive pharmaceutical interventions to treat AD and most of the treatment options are not for cure or prevention, but to slow down the progression of the disease. The aim of this study was to examine the effect of tactile stimulation on AD-like symptoms and pathology in APP NL-G-F/NL-G-F mice, a mouse model of AD. The results show that tactile stimulation improves the AD-like symptoms on tests of cognition, motor, and anxiety-like behaviours and these improvements are associated with reduced AD pathology in APP mice.

neuroscience↗

Early Tactile Stimulation Influences the Development of Alzheimer Disease in Gestationally Stressed APPNL-G-F/ NL-G-F Adult mice

Alzheimer Disease (AD) is associated with cerebral plaques and tangles, reduced synapse number, and shrinkage in several brain areas and these morphological effects are associated with the onset of compromised cognitive, motor, and anxiety-like behaviours. The focus of this study was to examine the effect of neonatal tactile stimulation on AD-like behavioural and neurological symptoms on APP NL-G-F/NL-G-F mice, a mouse model of AD. Our findings indicate that neonatal tactile stimulation improves cognition, motor skills, and anxiety-like symptoms in both gestationally stressed and non-stressed adult APP mice and that these alterations are associated with reduced A{beta} plaque formation. Thus, tactile stimulation appears to be a promising non-invasive preventative strategy for slowing the onset of dementia in aging animals.

neuroscience↗