Natasha Ivonne Bloch Morel

Home / Professors / Profesores / Natasha Ivonne Bloch Morel
Natasha Ivonne Bloch Morel

Natasha Ivonne Bloch Morel

n.blochm @uniandes.edu.co

Profesor Asistente

Profile
Courses
Products
Projects

Profile

Recent Courses

  • 2021
    • TESIS II

      First period
      Master Level

      FISIOL. CUANTIT. ING. BIOMEDI1

      First period
      Bachelor Level

Recent Products

Bloch NI, Corral-Lopez A., Buechel S, Kotrschal A, Kolm N, Mank J. (2020)
Different mating contexts lead to extensive rewiring of female brain coexpression networks in the guppy
Genes, Brain and Behavior (ISSN 1601-183X)
Article
Bloch NI.
Evaluación de terapias génicas para el tratamiento de la enfermedad de Parkinson empleando vehículos nanoestructurados y CRISPR/Cas9
Minciencias.
Proposal

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 behavior

      Duration: 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
    • TESIS I

      First period
      Master Level

      PROYECTO ESPECIAL MAESTRÍA

      First period
      Master Level
    • LAB.FISIOLOG.CUANTIT.ING.BIOM1

      First period
      Bachelor Level

      GENETHICS

      First period
      Bachelor Level
    • FISIOL. CUANTIT. ING. BIOMEDI1

      First period
      Bachelor Level

      FISIOL. CUANTIT. ING. BIOM. 2

      First period
      Bachelor Level
    • FISIOL. CUANTIT. ING. BIOMEDI1

      Second period
      Bachelor Level

      GENÉTICA APLICADA

      Second period
      Bachelor Level
    • LAB FISIOL. CUANTI. ING. BIOM2

      First period
      Bachelor Level

      TESIS II

      Second period
      Master Level
    • FISIOL. CUANTIT. ING. BIOM. 2

      Second period
      Bachelor Level

      PROY INVESTIGAC CIENCIAS 4 CRE

      Second period
      Master Level
    • TESIS II

      First period
      Master Level

      PROYECTO ESPECIAL MAESTRÍA 2

      Second period
      Master Level
    • PROY INVESTIGACIÓN EN CIENCIAS

      Second period
      Bachelor Level

      PROYECTO ESPECIAL MAESTRÍA

      Second period
      Master Level
    • TESIS I

      Second period
      Master Level
  • 2019
    • FISIOL. CUANTIT. ING. BIOMEDI1

      Second period
      Bachelor Level

      FISIOL. CUANTIT. ING. BIOM. 2

      Second period
      Bachelor Level
    • FISIOL. CUANTIT. ING. BIOMEDI1

      First period
      Bachelor Level

      FISIOL. CUANTIT. ING. BIOM. 2

      First period
      Bachelor Level
    • GENÉTICA APLICADA

      Second period
      Bachelor Level

      PROYECTO ESP. MAESTR 1 CREDITO

      Second period
      Master Level
    • PROYECTO ESPECIAL MAESTRIA

      Second period
      Master Level

      TESIS I

      Second period
      Master Level

Products

Bloch NI, Corral-Lopez A., Buechel S, Kotrschal A, Kolm N, Mank J. (2020)
Different mating contexts lead to extensive rewiring of female brain coexpression networks in the guppy
Genes, Brain and Behavior (ISSN 1601-183X)
Article
Bloch NI.
Evaluación de terapias génicas para el tratamiento de la enfermedad de Parkinson empleando vehículos nanoestructurados y CRISPR/Cas9
Minciencias.
Proposal
Kotrschal A, Szorkovszky A, Herbert-read J, Bloch NI, Romenskyy M, Buechel S, Eslava A, Al\`os L, Zeng H, Foll A, Braux G, Pelckmans K, Mank J, Sumpter D, Kolm N. (2020)
Rapid evolution of coordinated and collective movement in response to artificial selection
Other Publication
Kotrschal A, Szorkovszky A, Herbert-read J, Bloch N, Romenskyy M, Buechel S, Eslava A, Al\`os L, Zeng H, Foll A, Braux G, Pelckmans K, Mank J, Sumpter D, Kolm N, Bloch NI. (2020)
Rapid evolution of coordinated and collective movement in response to artificial selection
Science Advances (ISSN 2375-2548)
Article
Bernal X, Rojas B, Pinto MA, Mendoza A, Herrera-Montes A, Franco A, Ceron-Souza I, Paz A, Vergara D, Barragan L, Salazar C, Bohorquez M, Guarnizo C, Sanchez A, Olaya-Castro A, Urbina-Cardona N, Guayasamin J, Mora-Kepfer Uy F, Lamadrid F, Franco B, Muñoz MM, Rincon-Diaz M, Sanchez M, Betancourth C, Tarvin R, Marquez R, Lopez-Aguirre C, Ron SR, Ramirez S, Paez-Vacas M, Gaitan-Espitia JD, Navarrete-Mendez M, Vianna J, Varela-Jaramillo A, Sanchez-Martinez P, Caminer M, Garcia C, Kuprewic E, Gomez V, Chacon-Vargas K, Trillo A, Ramirez V, Buenaventura E, Monmany-Garzia AC, Carnaval AC, Dick C, Andrade-Nuñez M, Carvajal J, Pinto D, Camargo-Sanabria AA, Lips K, Motta D, Canedo C, Diaz J, Navarro-Suarez AM, Corredor K, Roa-Varon A, Flechas S, Martinez-lanfranco J, Chiarioni M, Caldwell M, Ballestas O, Mejia C, Chaverri G, Rossi A, Bonaccorso E, Pimiento C, Guerrero R, Warkentin K, Montoya C, Alvarez S, Gonzalez-Duran G, Anganoy-Criollo M, Martinez-Habibe MC, Ramirez JP, Burrowes P, Catenazzi A, Riveros A, Targino M, Velez A, Vargas O, Zapata F, Spengler C, Ceron K, Segovia C, Silva-Velasco M, Ochoa-Herrera V, Medina I, Narins P, Saccol SDA, Godinho MBD, Velasquez B, Velasco J, Lomascolo S, Hoke K, Zeidemann V, Almeida-Santos P, Ferraro D, Araujo-Vieira K, Borges da Rocha S, Torres-Jimenez M, Cadena C, Garcia-Collevatti R, Vasconcellos M, Recart W, Aide T, Bacon C, Jeckel A, Diele-Viegas L, Calijorne A, Santos DL, Cholak LR, Graboski-Mendes R, Silva FM, Guedes T, Lopez-Perilla YR, Fusinatto LA, Terra JD, Rodriguez-Brenes S, Narvaez AE, Zina J, Calderon-Espinosa M, Pardo-diaz C, Abadie M, Maldonado-Chaparro A, Cespedes L, Montesinos R, Fenker J, Brunes TO, Silva A, Goyes-Vallejos J, Rodrigues APVC, Friol NR, Herrera-alvarez S, De Souza E, Araujo OGS, Citeli NQK, Ruggeri J, Fierro-Calderon E, Acevedo-Charry O, Barato P, Campos M, Mazzini F, Beltran I, Meneses M, Jerez A, Clavijo A, Neira-Jimenez C, Dantas G, Nascimento LB, Caballero S, Henao-Sepulveda C, Wolff M, Barnabe P, Quiñones S, Bressan RF, Gomez-Montoya N, Gomez C, Colon-Pineiro Z, Esquivel-Dobles C, Bloch NI, Stynoski J, Arango D, Gonzalez T, Moreno F, Taylor R, Lawrence JP, Briscoe ADM, Ortiz-Barrientos D, Salerno PE, Restrepo S, Pasukonis A, Pacheco-damasceno R, Dalton MC, Proehl H, Valdez-Ward E, Rodriguez SA, Marquez M, Bonaparte E, Molina J, Brown J, Yeager J, Kikuchi D, Ringler M, Hernandez-Duran L, Schulte LM, Vaira M, Pereyra L, Astudillo D, Salica M, Varga S, Eguren A, Grattarola F, Bernal M, Gaston M, Ortega J, Burdfield-Steel E, Valencia L, Ringler E, Rada M, Melendez-Ackerman E, Botero CA, Estrada S, Orizaola G, Pinto BJ, Gonzalez-Bellido P, Hunter KL, Rueda L, Gordon S, Guerra MA, Albo MJ, Vega-frutis R, Blundo C, Castaneda-Gomez L, Donnelly M, Escobar BDC, Moreno M, Crawford AJ, Jiggins C, Roessler D, Bravo L, Sarmiento C, Munoz KA, Galeano SP, Castañeda M, Caro C, Zalamea P, Arias M, Zank C, Suarez-Mayorga AM, Colombo P, Cuervo A, Coriolano IR, De Melo LSO, Buitrago A, Elias M, Gonzalez M, Aldana A, Gubert C, Parra JL, Contador T, Coelho L, Trillo M, Bordin K, Zulian V, Moreno R, Loretto MC, Medina C, Lyra ML, Pulido-Santacruz P, Rosser N, Waldron T, Moreno C, Pizano Camila, Hoedl W, Fratani J, Duport A, Grosso J, Vera MF, Adarve I. (2019)
Empowering Latina scientists
Science (ISSN 0036-8075)
Article
Darolti I, Wright A, Sandkam B, Morris J, Bloch NI, Farré M, Fuller R, Bourne G, Larkin D, Breden F, Mank J. (2019)
Extreme heterogeneity in sex chromosome differentiation and dosage compensation in livebearers
Proceedings of the National Academy of Sciences of the United States of America (ISSN 0027-8424)
Article
Wright A, Darolti I, Bloch NI, Oostra V, Sandkam B, Buechel S, Kolm N, Breden F, Vicoso B, Mank J. (2019)
On the power to detect rare recombination events
Proceedings of the National Academy of Sciences of the United States of America (ISSN 0027-8424)
Article
Höglund J, Mitkus M, Peter O, Olle L, Drews A, Bloch NI, Kelber A, Maria S. (2019)
Owls lack UV-sensitive cone opsin and red oil droplets, but see UV light at night: Retinal transcriptomes and ocular media transmittance
Vision Research (ISSN 0042-6989)
Article
Price T, Stoddard Cassie, Shevell S, Bloch NI. (2019)
Understanding how neural responses contribute to the diversity of avian colour vision
Animal Behaviour (ISSN 0003-3472)
Article
Bloch NI, Corral-Lopez A., Buechel S, Kotrschal A, Kolm N, Mank J. (2018)
Early neurogenomic responses in the sensory-processing and decision-making brain components associated with variation in guppy female mate preferences
Nature Ecology and Evolution ()
Article
Wright A, Fumagalli M, Cooney C, Bloch NI, Vieira F, Buechel S, Kolm N, Mank J. (2018)
Sex-biased gene expression resolves sexual conflict through the evolution of sex-specific genetic architecture
Evolution Letters ()
Article
Morris J, Darolti I, Bloch NI, Wright A, Mank J. (2018)
Y chromosome degeneration and male-specific sequence in two guppy species
Genes ()
Article
Wright A, Darolti I, Bloch NI, Oostra V, Sandkam B, Buechel S, Kolm N, Breden F, Vicoso B, Mank J. (2017)
Convergent recombination suppression suggests role of sexual selection in guppy sex chromosome formation.
Nature Communications (ISSN 2041-1723)
Article
Lopez A, Bloch NI, Kotrschal A, Der W, Buechel S, Mank J, Kolm N. (2017)
Female brain size affects the assessment of male attractiveness during mate choice
Science Advances (ISSN 2375-2548)
Article
Bloch NI. (2016)
The evolution of opsins and color vision: connecting genotype to a complex phenotype
Acta Biologica Colombiana (ISSN 0120-548X)
Article
Klomp J, Athy D, Kwan C, Bloch NI, Sandmann T, Lemke S, Schmidt-ott U. (2015)
Embryo development. A cysteine-clamp gene drives embryo polarity in the midge Chironomus.
Science (ISSN 0036-8075)
Article
Bloch NI. (2015)
Evolution of opsin expression in birds driven by sexual selection and habitat.
Proceedings of the Royal Society B: Biological Sciences (ISSN 0962-8452)
Article
Bloch NI, Price T, Chang B. (2015)
Evolutionary dynamics of Rh2 opsins in birds demonstrate an episode of accelerated evolution in the New World warblers (Setophaga).
Molecular Ecology (ISSN 0962-1083)
Article
Bloch NI, Morrow J, Chang B, Price T. (2015)
SWS2 visual pigment evolution as a test of historically contingent patterns of plumage color evolution in warblers.
Evolution (ISSN 0014-3820)
Article
Bloch NI, Irschick D. (2006)
An analysis of inter-population divergence in visual display behavior of the green anole lizard (Anolis carolinensis)
Ethology (ISSN 0179-1613)
Article
Irschick D, Ramos M, Buckley C, Elstrott J, Carlisle E, Lailvaux S, Bloch NI, Herrel A, Vanhooydonck B. (2006)
Are morphology-performance relationships invariant across different seasons? A test with the green anole lizard (Anolis carolinensis)
Oikos (ISSN 0030-1299)
Article
Bloch NI, Irschick D. (2005)
Toe-clipping dramatically reduces clinging performance in a pad-bearing lizard (Anolis carolinensis)
Journal of Herpetology (ISSN 0022-1511)
Article

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 behavior

      Duration: 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
    • Neurogenómica del comportamiento social en guppies

      Duration: 60 months

      PR.6.2019.6589

      Neurogenómica del comportamiento social en guppys Entender como el cerebro produce comportamientos apropiados en cientos de situaciones diferentes y en respuesta a estimulo variados es una de las preguntas mas fundamentales de la neurociencia. Estudiar el comportamiento animal y su evolución requiere investigar los mecanismos neuronales de la percepción y el comportamiento. En este proyecto nos enfocaremos en el guppys (Poecilia reticulata), un pequeño pez de agua dulce en el que muchos comportamientos sociales y de apareamiento han sido estudiados y descritos. El propósito de este estudio es entender las redes génicas que se activan en el cerebro durante diferentes contextos sociales, así como usar diversas técnicas de edición genética para manipular y entender la funcionalidad de los genes que regulan estas redes. Con este fin vamos a integrar genética y neurogenómica, neurociencias, etología, biología molecular y edición génica en guppys de poblaciones naturales y en el laboratorio.  Se colectarán guppys para traer al laboratorio y realizar los siguientes estudios:·      Estudiar la expresión de genes de interés en el cerebro·      Establecer un protocolo de edición génica (CRISPR-Cas9) con el fin de estudiar la función de estos genes en el control de comportamientos sociales.·      Estudiar la relación entre comportamiento social y cognición. Para este propósito se  documentará la variación natural en el tamaño del cerebro y la neuroanatomía de los guppys en diversas poblaciones del país.