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Laser-scanning Photostimulation of Optogenetically Targeted Forebrain Circuits
Published on: December 27, 2013
Optogenetic and chemogenetic approaches for modeling neurological disorders in vivo
Viktoriya G Krut'1, Andrei L Kalinichenko2, Dmitry I Maltsev3
1Pirogov Russian National Research Medical University, Moscow 117997, Russia; Federal Center of Brain Research and Neurotechnologies, Federal Medical Biological Agency, Moscow 117997, Russia.
Abstract:
Animal models of human neurological disorders provide valuable experimental tools which enable us to study various aspects of disorder pathogeneses, ranging from structural abnormalities and disrupted metabolism and signaling to motor and mental deficits, and allow us to test novel therapies in preclinical studies. To be valid, these animal models should recapitulate complex pathological features at the molecular, cellular, tissue, and behavioral levels as closely as possible to those observed in human subjects. Pathological states resembling known human neurological disorders can be induced in animal species by toxins, genetic factors, lesioning, or exposure to extreme conditions. In recent years, novel animal models recapitulating neuropathologies in humans have been introduced. These animal models are based on synthetic biology approaches: opto- and chemogenetics. In this paper, we review recent opto- and chemogenetics-based animal models of human neurological disorders. These models allow for the creation of pathological states by disrupting specific processes at the cellular level. The artificial pathological states mimic a range of human neurological disorders, such as aging-related dementia, Alzheimer's and Parkinson's diseases, amyotrophic lateral sclerosis, epilepsy, and ataxias. Opto- and chemogenetics provide new opportunities unavailable with other animal models of human neurological disorders. These techniques enable researchers to induce neuropathological states varying in severity and ranging from acute to chronic. We also discuss future directions for the development and application of synthetic biology approaches for modeling neurological disorders.
Insights
Synthetic biology tools like optogenetics and chemogenetics create advanced animal models for neurological disorders. These models precisely mimic human conditions, aiding in the study and treatment of diseases such as Alzheimer's and Parkinson's.
Area of Science:
- Neuroscience
- Synthetic Biology
- Animal Modeling
Background:
- Animal models are crucial for studying neurological disorder pathogenesis and testing therapies.
- Valid models must closely recapitulate human pathological features at multiple levels.
- Traditional methods include toxins, genetic factors, lesioning, or extreme conditions.
Purpose of the Study:
- To review recent optogenetics- and chemogenetics-based animal models for human neurological disorders.
- To highlight the capabilities of synthetic biology approaches in neuropathology research.
- To discuss future directions for these advanced modeling techniques.
Main Methods:
- Review of optogenetics- and chemogenetics-based animal models.
- Analysis of how these synthetic biology tools disrupt cellular processes to create artificial pathological states.
- Examination of models mimicking conditions like Alzheimer's, Parkinson's, and epilepsy.
Main Results:
- Opto- and chemogenetics enable the creation of precise pathological states at the cellular level.
- These novel models mimic a wide spectrum of human neurological disorders.
- The techniques offer new possibilities for inducing neuropathologies of varying severity and duration.
Conclusions:
- Opto- and chemogenetics represent a significant advancement in animal modeling for neurological disorders.
- These synthetic biology approaches provide unprecedented control for mimicking human disease.
- Further development holds promise for enhanced understanding and treatment of neurological conditions.
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