Funded Projects

Browse wide-ranging research at the frontiers of neuroscience supported by Wu Tsai Neurosciences Institute grants, awards, and training fellowships.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2023
Neuronal and genetic imprints of male mating experience

We understand a lot about how the brain gets rewired when learning a new skill by repetitive practice, such as hitting a curveball. However, how learning and experience alter the innate behaviors that we are born with is poorly understood.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2017
Mechanisms of plasma proteins that rejuvenate the aged brain

One in three people will develop Alzheimer’s disease or another dementia during their lifetime, but effective treatment still does not exist despite intense efforts. Recently, blood from young mice has been found to rejuvenate several tissues of old mice, including the brain.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2017
Systematic identification of wiring specificity molecules in Drosophila olfactory circuit using single cell RNA-seq

Precise neural circuit assembly is critical for appropriate function of the nervous system. A functional circuit requires proper targeting and matching of axons and dendrites of pre- and post-synaptic neurons. However, our understanding of the mechanisms that establish wiring specificity of complex neural circuit is far from complete.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2017
In vivo analysis of cAMP dynamics in developing glial cells

Cyclic adenosine monophosphate (cAMP) is an important intracellular messenger that plays a critical role in the development of the central and peripheral nervous system. However, the mechanisms of action of cAMP in the nervous system development are poorly understood and there are currently no suitable methods to visualize cAMP in the cells of living animals.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2017
Combining electrical and optical measurements on voltage-gated sodium channel toxins

Ion channels in the membranes of neuronal cells are the key regulators of neuronal signaling. An ion channel works as a gate that can open and close to allow specific molecules to enter or leave the cell. One important type of ion channels are voltage-gated sodium channels (NaVs), which are essential for many processes in our brain.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2015
The molecular and cellular basis of magnetosensation: quantum effects in biological systems

For decades we have known that a wide variety of animals use the earth’s magnetic field for navigation, although the means by which they sense it has remained a mystery. There is a long-standing idea that animals like migratory birds use small magnetic deposits in their beaks to act as a compass, however, this idea remains unverified and is currently questioned by many in the field.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2015
Genomic analysis of the gene regulatory landscape of the developing neocortex

This research seeks to understand how our genes encode the instructions for neurons in the neocortex to properly arise during normal brain development. This knowledge will allow scientists to understand how genetic mutations perturb development leading to human disease.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2018
Transcriptomic analysis of neural circuits activated during encoding of long-term memory

Our ability to remember makes us human, and is essential for acquiring new skills and integrating previous experiences into future decision-making. While it is known that long-term memory (LTM) formation requires new gene expression, we lack a detailed and comprehensive understanding of which genes must be expressed to encode memories, and how these genes change over time during the consolidation of memories.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2018
Kinetic determinants of GPCR signaling: from ultra-fast to diffusion-limited

G protein-coupled receptors (GPCRs) are proteins that exist within the cell membrane and act to transfer the information encoded within neurotransmitters and drugs into cell responses. GPCRs exist throughout the body in several systems including the nervous system.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2018
Examining the role of glia signaling in neuronal excitability

Understanding how glia regulate the expression and/or post-translational modification of sodium ion channels may lead to the identification of new pharmaceutical targets for the treatment of pain.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2019
Investigating the evolution of vertebrate pair bonding mechanisms

By performing a molecular and neural network analysis across behaviorally divergent pair bonding species, Dr. Jessica Nowicki will use the power of comparative analysis to reveal core mechanisms that regulate pair bonding.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2019
Forces driving myelin wrapping In oligodendrocytes

Dr. Miguel Garcia believes that identifying the mechanism of myelin wrapping is important in understanding neural development and is a critical first step towards creating much needed therapeutic approaches to stimulate remyelination in patients with demyelinating diseases.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2020
How animals keep time annually: molecular mechanisms of the seasonal rhythm

Adaptation to environmental variations is vital for animal survival. While short-lived organisms face unpredictable environmental fluctuations, long-lived animals are subject to regular and generally drastic environmental changes across different seasons.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2020
Identifying the neurobiological underpinnings of meta-learning

Meta-learning, an old concept in psychology, is the ability of humans to improve the way they learn with experience.  Our previous experience of learning a skill makes us better at learning another, related skill. For instance, an athlete will learn a new sport faster than someone without the same level of experience in similar learning tasks.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2021
Neuronal mechanism underlying spatial navigation in cephalopods

Cephalopods, including the cuttlefish, octopus, and squid, possess one of the most advanced nervous systems among invertebrates. With their advanced nervous systems, cephalopods are able to perform sophisticated behaviors such as navigating in open water to search for food. Yet how their nervous systems accomplish spatial navigation remains completely unknown.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2022
Restoring multi-limb motion in people with paralysis via brain-computer interface

Intracortical brain-computer interfaces (iBCIs) can restore lost communication and motor function for people with severe speech and motor impairment due to neurological injury or disease. iBCIs measure neural activity from the brain, decode this activity into control signals, and use these signals to guide prosthetic devices such as computer cursors and prosthetic arms.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2022
Assessing the generalizability of individual brain models

Cognitive neuroscience has traditionally focused on identifying the neural basis of psychological traits or state effects across large samples of participants. Recently, researchers have pushed towards providing more precise estimates of individual functional organization to better understand both psychological constructs as well as their supporting neural mechanisms.

Wu Tsai Neurosciences Institute
Interdisciplinary Scholar Award
2022
Next-generation brain imaging in freely moving animals

Calcium imaging in freely behaving animals allows for the tracking of neuronal activity under approximately normal behavioral conditions. However, the slow response time of calcium imaging inhibits high resolution voltage and temporal measurements. To address this issue, modern molecular tools have been developed to optically report the high-speed dynamics of neurons more accurately.