Single-Cell and Spatial Transcriptomic Dissection of Brain Cellular Responses to Nutritional and Injury Perturbations
| dc.contributor.author | Lin, Yu | en |
| dc.contributor.committeechair | Xie, Hehuang David | en |
| dc.contributor.committeemember | Jarome, Timothy | en |
| dc.contributor.committeemember | Wu, Xiaowei | en |
| dc.contributor.committeemember | Wang, Xiaobin | en |
| dc.contributor.committeemember | Morozov, Alexei | en |
| dc.contributor.department | Genetics, Bioinformatics, and Computational Biology | en |
| dc.date.accessioned | 2026-09-16T08:00:47Z | en |
| dc.date.available | 2026-09-16T08:00:47Z | en |
| dc.date.issued | 2026-09-15 | en |
| dc.description.abstract | Single-cell and spatial transcriptomic technologies have transformed our ability to resolve the cellular composition of complex tissues, such as the brain, and provide single-cell-level expression profiles. Yet interpreting these data requires computational approaches that move beyond cataloging discrete cell types to capture the continuous, context-dependent transcriptional states that cells adopt in response to perturbation. In this work, we develop and apply single-cell, single-nucleus, and spatial transcriptomic approaches to characterize how the developing and injured brain responds to two classes of perturbation-nutritional and injury-reading out each challenge as a shift in cell-type composition and cell-state programs. In Chapter 2, we apply spatial transcriptomics together with single-nucleus multi-omics (paired snRNA-seq and snATAC-seq) to investigate how excess maternal folic acid supplementation affects offspring brain development. We find that maternal folic acid excess alters gene programs governing neurogenesis and axon myelination in a region-specific manner, and identify maturing excitatory neurons of the hippocampal dentate gyrus as particularly vulnerable, exhibiting coupled changes in gene expression and chromatin accessibility within ribosomal biogenesis pathways critical for synaptic formation. In Chapter 3, we extend the nutritional perturbation to postnatal timing by modeling an abrupt prenatal-to-postnatal drop in folate availability—a "folate cliff"—in the developing cerebellum. Combining behavioral assays with bulk transcriptomic analysis, we observe a nonlinear behavioral dose-response and a convergent disruption of glial and myelination programs, marked by upregulation of Gfap and downregulation of Pdgfra and Mbp. We interpret these changes as a coordinated glial/myelin disruption signature, while noting the limited sample size and the cell-type resolution deferred to future work. In Chapter 4, we develop StateCommute, a computational framework to present cells in pathway space and integrate non-negative matrix factorization, compositional (differential-abundance) analysis, trajectory inference, and cell-cell communication modeling to resolve transcriptional states across distinct brain injuries. Applying it to a harmonized atlas of viral encephalitis (VEEV), organophosphorus nerve-agent (OPNA) exposure, and traumatic brain injury (TBI), we identify cellular states and pathway-level programs that are shared across injuries as well as those specific to each-recovered without reference to condition labels yet anchored in genuine, injury-driven transcriptional change. Together, these chapters demonstrate how single-cell and spatial transcriptomic approaches can be used to characterize cellular responses to diverse biological perturbations during brain development and injury. In addition to providing biological insights into the mechanisms, this work introduces and applies computational methods for integrating multimodal and spatial transcriptomic data to better define cellular states and their interactions. Collectively, these findings provide a framework for studying dynamic cellular responses in the brain and establish a foundation for future investigations of brain development, injury, and neurological disease. | en |
| dc.description.abstractgeneral | The brain is built from multiple different kinds of cells. Neurons carry electrical signals, while supporting cells called glia nourish neurons and produce the insulation, known as myelin, that lets those signals travel quickly. Even cells of the same kind can behave differently depending on where they sit and what is happening around them-a difference biologists describe as a change in a cell's "state." Recently developed technologies allowed scientists to read which genes are switched on in a single cell, and even to map each cell to its exact position within a piece of tissue. These technologies produce enormous and complicated datasets, and interpretation requires new computational tools. Traditionally, cells are sorted into a fixed list of types, but this approach can miss the subtler, shifting states that cells enter when the body is disturbed. In this work, we develop and apply such computational tools to ask a shared question across several studies: when the developing or injured brain is disturbed, whether by nutrition or by injury, which cells, and which cell states, change? In Chapters 2 and 3, we study folic acid, a B vitamin that is essential during pregnancy and is recommended to prevent birth defects, but that may carry risks when taken in excess. In Chapter 2, we find that excessive folic acid during pregnancy alters specific regions and cell types in the offspring's brain, with neurons in the memory-related hippocampus being especially affected. In Chapter 3, we examine what happens when an infant's folate supply drops sharply after birth, a "folate cliff, and observe disruption of the brain's supporting glial cells and their myelin insulation in the cerebellum, along with changes in behavior. In Chapter 4, we developed a computational tool, StateCommute, that compares how brain cells respond to three very different injuries: a viral brain infection, exposure to a nerve-agent poison, and physical head trauma. The tool identifies both shared and injury-specific cellular responses, providing a general framework for investigating how brain cells respond to diverse forms of injury. Together, this work provides a new computational method and biological insights into how the developing and injured brain responds to disturbance, and points toward future studies that examine these changes at even finer cellular detail. | en |
| dc.description.degree | Doctor of Philosophy | en |
| dc.format.medium | ETD | en |
| dc.identifier.other | vt_gsexam:47503 | en |
| dc.identifier.uri | https://hdl.handle.net/10919/143819 | en |
| dc.language.iso | en | en |
| dc.publisher | Virginia Tech | en |
| dc.rights | In Copyright | en |
| dc.rights.uri | http://rightsstatements.org/vocab/InC/1.0/ | en |
| dc.subject | folic acid | en |
| dc.subject | spatial transcriptomics | en |
| dc.subject | single-nucleus multi-omics | en |
| dc.subject | brain development | en |
| dc.subject | hippocampus | en |
| dc.title | Single-Cell and Spatial Transcriptomic Dissection of Brain Cellular Responses to Nutritional and Injury Perturbations | en |
| dc.type | Dissertation | en |
| thesis.degree.discipline | Genetics, Bioinformatics, and Computational Biology | en |
| thesis.degree.grantor | Virginia Polytechnic Institute and State University | en |
| thesis.degree.level | doctoral | en |
| thesis.degree.name | Doctor of Philosophy | en |
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