Single Dose of Rapamycin Reverses Autism-Like Symptoms in Adult Mice Within Hours, UCLA Study Finds
核心洞察
A single dose of rapamycin improved autism (搜索)-like behaviors, brain overactivity, seizure susceptibility, and sensory sensitivity in adult mice within approximately two hours.
The rapid response suggests rapamycin works by rebalancing neuronal excitability and functional brain circuitry rather than repairing underlying structural brain changes.
Researchers caution that rapamycin is not a viable human treatment due to temporary effects, tolerance with repeated dosing, and potential toxicity.
UCLA Health (搜索) researchers have demonstrated that a single dose of the immunosuppressive drug rapamycin can reverse autism (搜索)-like brain and behavioral changes in adult mice within approximately two hours, according to a study published in Nature Communications. The findings challenge long-held assumptions about the adult brain's capacity for functional change and open new avenues for therapeutic development targeting autism-associated symptoms.
The study, led by senior author Dr. Harley Kornblum, director of the UCLA Intellectual and Developmental Disabilities Research Center in the Semel Institute for Neuroscience and Human Behavior, found that rapamycin rapidly improved brain communication and behavior in mice whose mothers had been exposed to mild inflammation during pregnancy — a model linked to autism (搜索)-like outcomes in offspring.
"The level of functional normalization achieved over this short time suggests new mechanisms by which possible treatments may act," said Kornblum. "It suggests the adult brain may be more adaptable than we assumed, even when the underlying structural changes from early development are still there. This points us toward the brain's functional circuitry, not just its physical structure, as a target for future treatment approaches."
Modeling Maternal Inflammation and Its Lasting Effects
Previous research has established that even mild inflammation during mid-pregnancy can affect developing offspring, with reported consequences including autism (搜索)-like behaviors, unusual brain growth, seizures, and heightened sensitivity to ordinary sounds, touch, and other sensory experiences that persist into adulthood.
In the current study, researchers exposed pregnant mice to a mild inflammatory trigger early in gestation at a dose low enough that the mothers did not become significantly ill. The resulting offspring developed chronic inflammation in both the brain and body, mild brain overgrowth, excessive signaling through the mTOR (搜索) pathway, disorganized communication across functional brain networks, and behaviors associated with autism (搜索).
Rapid Improvements Across Multiple Measures
When the researchers administered a single dose of rapamycin to the adult offspring, improvements emerged across nearly every measurement examined. Neurons that had been unusually active began firing more normally. The animals became less vulnerable to seizures. Brain regions that had not been communicating properly shifted toward more typical patterns. Repetitive behaviors, sensory sensitivity, and excessive responses to sensory input also declined.
All of these changes occurred within roughly two hours — a timeframe far too short for the drug to have repaired underlying physical changes in the brain caused by maternal inflammation. Because physical remodeling of brain synapses typically takes considerably longer, the scientists concluded that rapamycin was changing brain function rather than rebuilding the brain's underlying structure.
"These results reframe how autism (搜索)-associated symptoms might be treated. If the adult brain remains capable of functional normalization, then some features of autism may be successfully addressed without needing to correct underlying structural differences," said the paper's first author Dr. Janel Le Belle, an associate professor in the UCLA Department of Neurosurgery.
Mechanism: Rebalancing Neuronal Excitability
To determine how the drug acted so quickly, the research team analyzed gene activity in brain cells before and after treatment. Rapamycin reversed abnormal patterns of gene expression involving autism (搜索), epilepsy (搜索), and ion channel function. The strongest effects appeared in excitatory neurons, which stimulate activity in brain networks. This suggests that the drug rapidly restored a healthier balance in neuronal excitability rather than repairing structural differences formed during early development.
Rapamycin works in part by reducing activity in the mTOR (搜索) pathway, a biological signaling system that regulates cell growth and proliferation. Excessive mTOR activity has been linked to some autism (搜索)-related conditions, and rapamycin has produced improvements in earlier mouse studies of autism.
Why Rapamycin Is Not a Viable Human Treatment
Despite the striking results, the researchers emphasized that rapamycin should not be considered a practical treatment for autism (搜索)-associated symptoms in people. Co-senior author Dr. Neil Harris, a professor in the UCLA Department of Neurosurgery, warned that the benefits did not last and that daily dosing became less effective after several weeks as the mice developed tolerance.
"This points toward new therapeutic targets like sensory circuit neuromodulation or balancing neuronal inhibition and excitation, rather than toward rapamycin itself as a treatment," Harris said.
Those limitations, combined with rapamycin's potential toxicity and the fact that the findings come from animal experiments, make the drug unsuitable for widespread use in humans.
Future Therapeutic Directions
The results point to several possible targets for future treatments, including mTOR (搜索) pathway activity, the organization of brain networks, and the balance of excitation among neurons. Such approaches could potentially address specific autism (搜索) symptoms, including sensory over-responsivity, which is common and often difficult to treat.
The study was funded by the Dr. Miriam and Sheldon G. Adelson Medical Research Foundation, the UCLA Brain Injury Research Center, the UCLA Intellectual and Developmental Disabilities Research Center, the National Institutes of Health, the Simons Foundation for Autism (搜索) Research, Autism Speaks, and the UCLA Center for Autism Research and Treatment.
