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Somatic mutation, genomic variation, and neurological disease
Poduri, Annapurna; Evrony, Gilad D; Cai, Xuyu; Walsh, Christopher A
Genetic mutations causing human disease are conventionally thought to be inherited through the germ line from one's parents and present in all somatic (body) cells, except for most cancer mutations, which arise somatically. Increasingly, somatic mutations are being identified in diseases other than cancer, including neurodevelopmental diseases. Somatic mutations can arise during the course of prenatal brain development and cause neurological disease-even when present at low levels of mosaicism, for example-resulting in brain malformations associated with epilepsy and intellectual disability. Novel, highly sensitive technologies will allow more accurate evaluation of somatic mutations in neurodevelopmental disorders and during normal brain development.
PMID: 23828942
ISSN: 1095-9203
CID: 3332482
Microcephaly Gene Links Trithorax and REST/NRSF to Control Neural Stem Cell Proliferation and Differentiation
Yang, Yawei J; Baltus, Andrew E; Mathew, Rebecca S; Murphy, Elisabeth A; Evrony, Gilad D; Gonzalez, Dilenny M; Wang, Estee P; Marshall-Walker, Christine A; Barry, Brenda J; Murn, Jernej; Tatarakis, Antonis; Mahajan, Muktar A; Samuels, Herbert H; Shi, Yang; Golden, Jeffrey A; Mahajnah, Muhammad; Shenhav, Ruthie; Walsh, Christopher A
Microcephaly is a neurodevelopmental disorder causing significantly reduced cerebral cortex size. Many known microcephaly gene products localize to centrosomes, regulating cell fate and proliferation. Here, we identify and characterize a nuclear zinc finger protein, ZNF335/NIF-1, as a causative gene for severe microcephaly, small somatic size, and neonatal death. Znf335 null mice are embryonically lethal, and conditional knockout leads to severely reduced cortical size. RNA-interference and postmortem human studies show that ZNF335 is essential for neural progenitor self-renewal, neurogenesis, and neuronal differentiation. ZNF335 is a component of a vertebrate-specific, trithorax H3K4-methylation complex, directly regulating REST/NRSF, a master regulator of neural gene expression and cell fate, as well as other essential neural-specific genes. Our results reveal ZNF335 as an essential link between H3K4 complexes and REST/NRSF and provide the first direct genetic evidence that this pathway regulates human neurogenesis and neuronal differentiation.
PMCID:3567437
PMID: 23178126
ISSN: 0092-8674
CID: 197612
Single-neuron sequencing analysis of L1 retrotransposition and somatic mutation in the human brain
Evrony, Gilad D; Cai, Xuyu; Lee, Eunjung; Hills, L Benjamin; Elhosary, Princess C; Lehmann, Hillel S; Parker, J J; Atabay, Kutay D; Gilmore, Edward C; Poduri, Annapurna; Park, Peter J; Walsh, Christopher A
A major unanswered question in neuroscience is whether there exists genomic variability between individual neurons of the brain, contributing to functional diversity or to an unexplained burden of neurological disease. To address this question, we developed a method to amplify genomes of single neurons from human brains. Because recent reports suggest frequent LINE-1 (L1) retrotransposition in human brains, we performed genome-wide L1 insertion profiling of 300 single neurons from cerebral cortex and caudate nucleus of three normal individuals, recovering >80% of germline insertions from single neurons. While we find somatic L1 insertions, we estimate <0.6 unique somatic insertions per neuron, and most neurons lack detectable somatic insertions, suggesting that L1 is not a major generator of neuronal diversity in cortex and caudate. We then genotyped single cortical cells to characterize the mosaicism of a somatic AKT3 mutation identified in a child with hemimegalencephaly. Single-neuron sequencing allows systematic assessment of genomic diversity in the human brain.
PMID: 23101622
ISSN: 1097-4172
CID: 3332472
Somatic Activation of AKT3 Causes Hemispheric Developmental Brain Malformations
Poduri, Annapurna; Evrony, Gilad D; Cai, Xuyu; Elhosary, Princess Christina; Beroukhim, Rameen; Lehtinen, Maria K; Hills, L Benjamin; Heinzen, Erin L; Hill, Anthony; Hill, R Sean; Barry, Brenda J; Bourgeois, Blaise F D; Riviello, James J; Barkovich, A James; Black, Peter M; Ligon, Keith L; Walsh, Christopher A
Hemimegalencephaly (HMG) is a developmental brain disorder characterized by an enlarged, malformed cerebral hemisphere, typically causing epilepsy that requires surgical resection. We studied resected HMG tissue to test whether the condition might reflect somatic mutations affecting genes critical to brain development. We found that two out of eight HMG samples showed trisomy of chromosome 1q, which encompasses many genes, including AKT3, a gene known to regulate brain size. A third case showed a known activating mutation in AKT3 (c.49G-->A, creating p.E17K) that was not present in the patient's blood cells. Remarkably, the E17K mutation in AKT3 is exactly paralogous to E17K mutations in AKT1 and AKT2 recently discovered in somatic overgrowth syndromes. We show that AKT3 is the most abundant AKT paralog in the brain during neurogenesis and that phosphorylated AKT is abundant in cortical progenitor cells. Our data suggest that somatic mutations limited to the brain could represent an important cause of complex neurogenetic disease.
PMCID:3460551
PMID: 22500628
ISSN: 0896-6273
CID: 164497
Tetanus toxin C fragment-conjugated nanoparticles for targeted drug delivery to neurons
Townsend, Seth A; Evrony, Gilad D; Gu, Frank X; Schulz, Martin P; Brown, Robert H; Langer, Robert
The use of nanoparticles for targeted drug delivery is often facilitated by specific conjugation of functional targeting molecules to the nanoparticle surface. We compared different biotin-binding proteins (avidin, streptavidin, or neutravidin) as crosslinkers to conjugate proteins to biodegradable nanoparticles prepared from poly(lactic-co-glycolic acid) (PLGA)-polyethylene glycol (PEG)-biotin polymers. Avidin gave the highest levels of overall protein conjugation, whereas neutravidin minimized protein non-specific binding to the polymer. The tetanus toxin C fragment (TTC), which is efficiently retrogradely transported in neurons and binds to neurons with high specificity and affinity, retained the ability to bind to neuroblastoma cells following amine group modifications. TTC was conjugated to nanoparticles using neutravidin, and the resulting nanoparticles were shown to selectively target neuroblastoma cells in vitro. TTC-conjugated nanoparticles have the potential to serve as drug delivery vehicles targeted to the central nervous system.
PMID: 17854886
ISSN: 0142-9612
CID: 3332462