Natasha Ivonne Bloch Morel
Natasha Ivonne Bloch Morel
n.blochm @uniandes.edu.co
Profesor Asistente
Profile
Recent Courses
- 2021
TESIS II
First period
Master Level
FISIOL. CUANTIT. ING. BIOMEDI1
First period
Bachelor Level
Recent Products
Recent Projects
- 2020
- Evaluación de terapias génicas para el tratamiento de la enfermedad de Parkinson empleando vehículos nanoestructurados y CRISPR/Cas9
Duration: 36 months
PR.2.2020.7068
Understanding the neural and neurogenomic basis of social behaviorDuration: 36 months
PR.3.2019.6487
A central challenge facing all animals and humans is to discriminate between a diverse array of social agents and respond in contextually-relevant ways5. Yet we have only started to scratch the surface on understanding how the brain can achieve this. We know that neural activity is initiated by cascades of gene expression changes, which are triggered by selected gene regulators. My research program thus focuses on identifying these key genes and understanding their role in the control of social behavior, which will help us dissect the mechanisms at the basis of behavioral control in the brain. I rely on the guppy (Poecilia reticulata), an ideal system to study social behavior, with behaviorally relevant brain regions homologous to humans1(social decision-making network). Within social behavior, I focus on mating behavior, as a clearly defined behavior, that can be controlled and manipulated in the laboratory. I have organized this project under the three following axis:· First, I will study the proximalmechanisms of mating behavior by studying changes in gene expression across the SDMN in response to different mating stimuli. Herbert6originally introduced the idea that limited genetic elements can encode for the multiple different behaviors in different social contexts. This could be accomplished via complex spatio- temporal patterns of gene activation in different brain nuclei. I will investigate these gene expression dynamics after exposure to different social stimuli, thus dissecting how behavior is controlled in the brain and which genes act as the main regulators of social behavior in a context-appropriate manner. · Second, I will investigate the relationship between mating behavior and cognition, and neuroanatomy, as ultimatemechanisms underlying social behavior. Doing so will help us understand the role these factors have in driving the evolution of social behavior and its interplay with cognition. Do smarter individuals behave differently towards conspecifics? Do they choose mates in a different way? · Finally, I will standardize the required protocols and microsurgery required to use gene editing techniques (CRISPR-Cas9) in the guppy brain. This will include developing the appropriate microsurgery and microinjection techniques, as well as testing the specificity and efficiency of CRISPR-Cas9 vehicle injection in the brain. These protocols will allow me to continue my research beyond the tenure of the current FAPA, investigating the precise function of behavioral genes and identifying candidates to regulate behavioral disorders.
Courses
- 2021
TESIS II
First period
Master Level
FISIOL. CUANTIT. ING. BIOMEDI1
First period
Bachelor Level
FISIOL. CUANTIT. ING. BIOM. 2
First period
Bachelor Level
PROYECTO ESPECIAL MAESTRÍA
First period
Master Level
PROY INVESTIGACIÓN EN CIENCIAS
First period
Bachelor Level
GENETHICS
First period
Bachelor Level
PROY INVESTIGAC CIENCIAS 4 CRE
First period
Master Level
- 2020
- 2019
Products
Projects
- 2020
- Evaluación de terapias génicas para el tratamiento de la enfermedad de Parkinson empleando vehículos nanoestructurados y CRISPR/Cas9
Duration: 36 months
PR.2.2020.7068
Understanding the neural and neurogenomic basis of social behaviorDuration: 36 months
PR.3.2019.6487
A central challenge facing all animals and humans is to discriminate between a diverse array of social agents and respond in contextually-relevant ways5. Yet we have only started to scratch the surface on understanding how the brain can achieve this. We know that neural activity is initiated by cascades of gene expression changes, which are triggered by selected gene regulators. My research program thus focuses on identifying these key genes and understanding their role in the control of social behavior, which will help us dissect the mechanisms at the basis of behavioral control in the brain. I rely on the guppy (Poecilia reticulata), an ideal system to study social behavior, with behaviorally relevant brain regions homologous to humans1(social decision-making network). Within social behavior, I focus on mating behavior, as a clearly defined behavior, that can be controlled and manipulated in the laboratory. I have organized this project under the three following axis:· First, I will study the proximalmechanisms of mating behavior by studying changes in gene expression across the SDMN in response to different mating stimuli. Herbert6originally introduced the idea that limited genetic elements can encode for the multiple different behaviors in different social contexts. This could be accomplished via complex spatio- temporal patterns of gene activation in different brain nuclei. I will investigate these gene expression dynamics after exposure to different social stimuli, thus dissecting how behavior is controlled in the brain and which genes act as the main regulators of social behavior in a context-appropriate manner. · Second, I will investigate the relationship between mating behavior and cognition, and neuroanatomy, as ultimatemechanisms underlying social behavior. Doing so will help us understand the role these factors have in driving the evolution of social behavior and its interplay with cognition. Do smarter individuals behave differently towards conspecifics? Do they choose mates in a different way? · Finally, I will standardize the required protocols and microsurgery required to use gene editing techniques (CRISPR-Cas9) in the guppy brain. This will include developing the appropriate microsurgery and microinjection techniques, as well as testing the specificity and efficiency of CRISPR-Cas9 vehicle injection in the brain. These protocols will allow me to continue my research beyond the tenure of the current FAPA, investigating the precise function of behavioral genes and identifying candidates to regulate behavioral disorders.
- 2019