Summary In solid tumors, G0-like states are likely critical for maintaining developmental hierarchies and cellular heterogeneity and promoting tumor growth/recurrence, yet little is known about tumor G0 states or regulation of their ingress/egress. To discover G0-like states and their regulators for glioblastoma (GBM), we analyzed G0 populations in an orthotopic model of GBM using single cell RNA-seq and performed a genome-wide CRISPR-Cas9 screen in patient-derived GBM stem-like cells (GSCs) for genes that trap cells in G0 when inhibited. We identify the protein acetyltransferase KAT5 as a key regulator of transcriptional, epigenetic, and proliferative heterogeneity impacting transitions into G0-like states. KAT5 activity suppresses the emergence of non-dividing subpopulations with oligodendrocyte progenitor and radial glial cell characteristics both in vitro and in a human GSC brain tumor model. In primary gliomas, KAT5 activity is dynamic with KAT5 low tumor cells displaying quiescent properties, while KAT5 activity overall increases from low to high grade tumors and is associated with worse patient outcomes.
In solid tumors, G0-like cell populations likely play important roles in maintaining cellular heterogeneity and promoting recurrence after standard of care. However, little is known about the mechanisms of tumor cell G0 ingress and egress. To discover regulators of G0-like states for glioblastoma (GBM), we performed a genome-wide CRISPR-Cas9 screen in patient-derived GBM stem-like cells (GSCs) for genes that trap cells in G0-like states when inhibited. We identify the protein acetyltransferase KAT5 as a key regulator of G0 and cell cycle dynamics in GSCs and GSC-derived tumors. In primary gliomas, KAT5low cells display G0-like properties, while overall KAT5 activity increases from low to high grade tumors. Further, we find that KAT5 activity suppresses the emergence of non-dividing subpopulations with oligodendrocyte progenitor and radial glial cell characteristics both in vitro and in a GSC tumor model. These results reveal that KAT5 activity regulates transitions between non-dividing/slow cycling, neurodevelopmental, and proliferative states in GBM tumors.
Glioblastoma, the most aggressive type of primary brain cancer, benefits little from standard of care therapy. Over the past few decades not much advancement has been made in improving the recurrence-free survival after treatment, with a median survival period of 15 month from diagnostic. G0-like states are thought to act a reservoir for tumor recurrence after treatment in glioblastoma. Targeting G0 states in glioblastoma poses an attractive therapeutic approach, however, little progress has been made in the field, likely due to poorly understood mechanisms that regulate G0 ingress and egress. To find regulators of G0 states, we performed a genome-wide CRISPR-Cas9 screen of patient-derived glioblastoma stem cells. We identified KAT5, a histone acetyltransferase coding gene which is the catalytic subunit of the histone acetyltransferase complex NuA4, as an important candidate for regulating G0 ingress and egress. We found that in primary gliomas, KAT5-low cells display G0-like properties, while overall KAT5 activity increases from low to high grade tumors. To study G0 states in glioblastoma, we have engineered an inducible KAT5 system that functions as a fully tunable model system, where we can control expression of KAT5 and, therefore, effectively control glioma cell entry and exit from G0-like states. We provide evidence that G0-like states are characterized by hypoacetylated histones and low protein synthesis rates, which remarkably induces shifts in cell state reminiscent of dedifferentiation and acquisition of stem-like behavior. Our work demonstrates that regulation of G0 like states may be coupled to the generation of tumor heterogeneity and, more importantly, suggests a potential strategy whereby inhibiting KAT5 activity could effectively "down grade" GBM tumors by lengthening residence time in G0-like states, significantly increasing survival times. For these studies we will present a variety of techniques, including single cell RNA-seq to characterize cellular subpopulations in tumors and GBM stem-like cell cultures.
The Fbw7 ubiquitin ligase targets many proteins for proteasomal degradation, which include oncogenic transcription factors (TFs) (e.g., c-Myc, c-Jun, and Notch). Fbw7 is a tumor suppressor and tumors often contain mutations in FBXW7, the gene that encodes Fbw7. The complexity of its substrate network has obscured the mechanisms of Fbw7-associated tumorigenesis, yet this understanding is needed for developing therapies. We used an integrated approach employing RNA-Seq and high-resolution mapping (cleavage under target and release using nuclease) of histone modifications and TF occupancy (c-Jun and c-Myc) to examine the combinatorial effects of misregulated Fbw7 substrates in colorectal cancer (CRC) cells with engineered tumor-associated FBXW7 null or missense mutations. Both Fbw7 mutations caused widespread transcriptional changes associated with active chromatin and altered TF occupancy: some were common to both Fbw7 mutant cell lines, whereas others were mutation specific. We identified loci where both Jun and Myc were coregulated by Fbw7, suggesting that substrates may have synergistic effects. One coregulated gene was CIITA, the master regulator of MHC Class II gene expression. Fbw7 loss increased MHC Class II expression and Fbw7 mutations were correlated with increased CIITA expression in TCGA colorectal tumors and cell lines, which may have immunotherapeutic implications for Fbw7-associated cancers. Analogous studies in neural stem cells in which FBXW7 had been acutely deleted closely mirrored the results in CRC cells. Gene set enrichment analyses revealed Fbw7-associated pathways that were conserved across both cell types that may reflect fundamental Fbw7 functions. These analyses provide a framework for understanding normal and neoplastic context-specific Fbw7 functions.
Single-cell RNA sequencing has emerged as a powerful tool for resolving cellular states associated with normal and maligned developmental processes. Here, we used scRNA-seq to examine the cell cycle states of expanding human neural stem cells (hNSCs). From these data, we constructed a cell cycle classifier that identifies traditional cell cycle phases and a putative quiescent-like state in neuroepithelial-derived cell types during mammalian neurogenesis and in gliomas. The Neural G0 markers are enriched with quiescent NSC genes and other neurodevelopmental markers found in non-dividing neural progenitors. Putative glioblastoma stem-like cells were significantly enriched in the Neural G0 cell population. Neural G0 cell populations and gene expression are significantly associated with less aggressive tumors and extended patient survival for gliomas. Genetic screens to identify modulators of Neural G0 revealed that knockout of genes associated with the Hippo/Yap and p53 pathways diminished Neural G0 in vitro, resulting in faster G1 transit, down-regulation of quiescence-associated markers, and loss of Neural G0 gene expression. Thus, Neural G0 represents a dynamic quiescent-like state found in neuroepithelial-derived cells and gliomas.
Current standard of care therapy for glioblastoma (GB) includes cytoreduction followed by ablative therapies that target rapidly dividing cell types. However, non-cycling, quiescent-like states (G0 phase cells) are present in both normal tissue and tumors and play important roles in maintaining heterogeneity and cellular hierarchies. The presence of quiescent-like/G0 states therefore represents a natural reservoir of tumor cells that are resistant to current treatments. Quiescence or G0 phase is a reversible state of “stasis” cells enter in response to developmental or environmental cues. However, it remains largely unclear to what degree or by what mechanisms tumor cells enter into or exit from quiescent-like states. To gain insight into how GB cells might regulate G0-like states, we performed a genome-wide CRISPR-Cas9 screen in patient-derived GB stem-like cells (GSCs) harboring a G0 reporter construct, which is stabilized when cells enter a G0-like state. Among the top screen hits were members of the Tip60/KAT5 histone acetyltransferase complex, including KAT5 itself. Remarkably, we show that knockout of KAT5 in vitro and in vivo dramatically increases G0 subpopulations in GSC cultures and GSC-induced tumors. Using genetically engineered GSC harboring KAT5 under the control of a Doxycyclin-titratable promoter, we establish that incrementally down regulating KAT5 activity is sufficient to slow cell cycle dynamics causing a build-up G0-like cells; and that partial inhibition of KAT5 leads to extended (mouse) patient survival. Further, in primary tumors, cell-based KAT5 activity assays revealed that high grade tumors harbor larger cell subpopulations with higher KAT5 activity than lower grade tumors. In summary, our results suggest that Tip60/KAT5 activity plays key roles in G0 ingress/egress for GBM tumors, may contribute to tumor progression, and may provide novel therapeutic opportunities.
Current standard of care therapy for glioblastoma (GBM) includes cytoreduction followed by ablative therapies that target rapidly dividing cell types. However, the presence of quiescent-like/G0 states, therefore, represents a natural reservoir of tumor cells that are resistant to current treatments. Quiescence or G0 phase is a reversible state of “stasis” cells enter in response to developmental or environmental cues. To gain insight into how glioblastoma cells might regulate G0-like states, we performed a genome-wide CRISPR-Cas9 screen in patient-derived GBM stem-like cells (GSCs) harboring a G0-reporter to identify genes that when inhibited trap GSCs in G0-like states. Among the top screen hits were members of the Tip60/KAT5 histone acetyltransferase complex, which targets both histones (e.g., H4) and non-histone proteins for acetylation. NuA4 functions as a transcriptional activator, whose activities are coordinated with MYC in certain contexts, and also participates in DNA double-strand break repair by facilitating chromatin opening. However, currently little is known about the roles for NuA4 complex in GBM biology. Through modeling KAT5 function in GSC in vitro cultures and in vivo tumors, we find that KAT5 inhibition causes cells to arrest in a G0-like state with high p27 levels, G1-phase DNA content, low protein synthesis rates, low rRNA rates, lower metabolic rate, suppression of cell cycle gene expression, and low histone H4 acetylation. Interestingly, partial inhibition of KAT5 activity slows highly aggressive tumor growth, while increasing p27hi H4-aclow populations. Remarkably, we that low grade gliomas have significantly higher H4-aclow subpopulations and generally lower H4-ac levels than aggressive grade IV tumors. Taken together, our results suggest that NuA4/KAT5 activity may play a key role in quiescence ingress/egress in glioma and that targeting its activity in high grade tumors may effectively “down grade” them, thus, increase patient survival.
Lysine 27-to-methionine (K27M) mutations in the H3.1 or H3.3 histone genes are characteristic of pediatric diffuse midline gliomas (DMGs). These oncohistone mutations dominantly inhibit histone H3K27 trimethylation and silencing, but it is unknown how oncohistone type affects gliomagenesis. We show that the genomic distributions of H3.1 and H3.3 oncohistones in human patient-derived DMG cells are consistent with the DNA replication-coupled deposition of histone H3.1 and the predominant replication-independent deposition of histone H3.3. Although H3K27 trimethylation is reduced for both oncohistone types, H3.3K27M-bearing cells retain some domains, and only H3.1K27M-bearing cells lack H3K27 trimethylation. Neither oncohistone interferes with PRC2 binding. Using Drosophila as a model, we demonstrate that inhibition of H3K27 trimethylation occurs only when H3K27M oncohistones are deposited into chromatin and only when expressed in cycling cells. We propose that oncohistones inhibit the H3K27 methyltransferase as chromatin patterns are being duplicated in proliferating cells, predisposing them to tumorigenesis.
Background CRISPR-Cas9-based technologies have revolutionized experimental manipulation of mammalian genomes. None-the-less, limitations of the delivery and efficacy of these technologies restrict their application in primary cells. Aims To create an optimized protocol for penetrant, reproducible, and fast targeted genome editing in cell cultures derived from primary cells, using patient-derived glioblastoma stem-like cells (GSCs) and human neural stem/progenitor cells (NSCs) for proof-of-concept experiments. Methods and results We employed transient nucleofection of Cas9:sgRNA ribonucleoprotein complexes composed of chemically synthesized 2 '-O-methyl 3 ' phosphorothioate-modified sgRNAs and purified Cas9 protein. Insertion-deletion mutation (indel) frequency and size distribution were measured via computational deconvolution of Sanger sequencing trace data. We found that this optimized technique routinely allows for >90% indel formation in only 3 days, without the need to create clonal lines for simple loss-of-function experiments. Using Western blotting, we observed near-total protein loss of target genes in cell pools. Additionally, we found that this approach allows for the creation of targeted genomic deletions. Furthermore, by using RNA-seq in edited NSCs to assess gene expression changes resulting from knockout of tumor suppressors commonly altered in glioblastoma, we also demonstrated the utility of this method for quickly creating a series of gene knockouts that allow for the study of oncogenic activities. Conclusion Our data suggest that this relatively simple method can be used for highly efficient and fast gene knockout, as well as for targeted genomic deletions, even in hyperdiploid cells (such as GSCs). This represents an extremely useful tool for the cancer research community when wishing to inactivate not only coding genes, but also non-coding RNAs, UTRs, enhancers, and promoters. This method can be readily applied to diverse cell types by varying the nucleofection conditions.
ABSTRACTBackgroundCRISPR-Cas9-based technologies have revolutionized experimental manipulation of mammalian genomes. None-the-less, limitations of the delivery and efficacy of these technologies restrict their application in primary cells.AimsTo create an optimized protocol for penetrant, reproducible, and fast targeted insertiondeletion mutation (indel) formation in cell cultures derived from primary cells, using patient-derived glioblastoma (GBM) stem-like cells (GSCs) and human neural stem/progenitor cells (NSCs) for proof-of-concept experiments.MethodsWe employed transient nucleofection of Cas9:sgRNA ribonucleoprotein complexes using chemically synthesized 2’-O-methyl 3’phosphorothioate-modified sgRNAs and purified Cas9 protein. Indel frequency and size distribution were measured via computational deconvolution of Sanger sequencing trace data. Western blotting was used to evaluate protein loss. RNA-seq in edited NSCs was used to assess gene expression changes resulting from knockout of tumor suppressors commonly altered in GBM.ResultsWe found that with this optimized technique, we can routinely achieve >90% indel formation in only 3 days, without the need to create clonal lines for simple loss-of-function experiments. We observed near-total protein loss of target genes in cell pools. Additionally, we found that this approach allows for the creation of targeted genomic deletions. We also demonstrated the utility of this method for quickly creating a series of gene knockouts that allow for the study of oncogenic activities.ConclusionOur data suggest that this relatively simple method can be used for highly efficient and fast gene knockout, as well as for targeted genomic deletions, even in hyperdiploid cells (such as GSCs). This represents an extremely useful tool for the cancer research community when wishing to inactivate not only coding genes, but also non-coding RNAs, UTRs, enhancers, and promoters. This method can be readily applied to diverse cell types by varying the nucleofection conditions.
Abstract CRISPR-Cas9-based technologies have revolutionized experimental manipulation of the human genome by enabling generation of site-specific genetic alterations, such as insertion-deletion (indel) mutations. None-the-less, limitations of the delivery and efficacy of these technologies restrict their application in primary human cells. Here, we present a simple and effective method for fast and penetrant induction of multi-allelic indels and near-precise deletions (ranging from ~50bp to >50kbp) in primary human neural stem/progenitor cell (NPC) and brain tumor-derived stem-like cell cultures using the CRISPR-Cas9 system. We report that mono-, bi-, or multi-allelic (depending on ploidy) indel efficiencies of >90% can be routinely achieved within 3 days, without the need for pre-engineering cells to express Cas9 or isolating clones. As a result, this method enables the quick generation of a series of knockouts at different genomic loci, which we illustrate by successively targeting TP53, CDKN2A, PTEN, and NF1 in human NPC populations, where ³95% loss of protein expression is observed. RNA-seq analysis of these NPC knockout pools confirmed gene expression changes including p53 transcriptional and Rb-axis targets, as well as NF1-dependent repression of major histocompatibility complex class II gene expression. Given its simplicity, this method is readily adaptable to other primary mammalian cell types.
Current standard of care therapy for glioblastoma (GBM) includes cytoreduction followed by ablative therapies that target rapidly dividing cell types. However, non-cycling, quiescent-like states (G0 phase cells) are present in both normal tissue and tumors and play important roles in maintaining heterogeneity and cellular hierarchies. The presence of quiescent-like/G0 states therefore represents a natural reservoir of tumor cells that are resistant to current treatments. Quiescence or G0 phase is a reversible state of “stasis” cells enter in response to developmental or environmental cues. However, it remains largely unclear to what degree or by what mechanisms tumor cells enter into or exit from quiescent-like states. To gain insight into how glioblastoma cells might regulate G0-like states, we performed a genome-wide CRISPR-Cas9 screen in patient-derived GBM stem-like cells (GSCs) harboring a p27-mVenus reporter construct, which is stabilized when cells enter a G0-like state. By assaying p27 reporteractivity, we were able to identify sgRNAs enriched in p27hipopulations and, which upon retest, trigger a G0-like arrest in GSCs. Among the top screen hits were members of the Tip60/KAT5 histone acetyltransferase complex, including KAT5 itself. Remarkably, we show that downregulation of KAT5 in vitro and in vivo dramatically increases the pool of cells in G0-like states in GSC cultures and GSC-induced tumors. Using single cell RNA-sequencing, we show that this cell state is characterized by gene expression signatures similar to those found in non-dividing subpopulations of GBM tumors and quiescent neural stem cells. In addition, we perform in-depth molecular and phenotypic characterization of these induced G0-like states, including epigenetic and metabolic profiles. These suggest a key role for KAT5 in regulating genes related to protein synthesis. In summary, our results suggest that Tip60/KAT5 activity plays key roles in G0 ingress/egress for GBM tumors and may provide novel therapeutic opportunities.
The molecular basis of the earliest neuronal changes that lead to Alzheimer's disease (AD) is unclear. Here, we analyze neural cells derived from sporadic AD (SAD), APOE4 gene-edited and control induced pluripotent stem cells (iPSCs). We observe major differences in iPSC-derived neural progenitor (NP) cells and neurons in gene networks related to neuronal differentiation, neurogenesis, and synaptic transmission. The iPSC-derived neural cells from SAD patients exhibit accelerated neural differentiation and reduced progenitor cell renewal. Moreover, a similar phenotype appears in NP cells and cerebral organoids derived from APOE4 iPSCs. Impaired function of the transcriptional repressor REST is strongly implicated in the altered transcriptome and differentiation state. SAD and APOE4 expression result in reduced REST nuclear translocation and chromatin binding, and disruption of the nuclear lamina. Thus, dysregulation of neural gene networks may set in motion the pathologic cascade that leads to AD.
Abstract Single cell (sc) genomic technologies are rapidly transforming our understanding of cellular states in normal and diseased tissues. Here, we applied scRNA-seq to cultures of proliferating human neural stem cells (NSCs) to better understand the relationship between cell cycle dynamics and developmental gene expression. This analysis revealed both conventional cell cycle states (S, G2, M) and novel G1 and G0-like states. Of note, we identified a Neural G0 phase representing a subpopulation enriched for expression of genes associated with adult quiescent NSCs, including CLU, HOPX, ID3, OLIG2, PTN, SYT11, S100B, SOX9, PTPRZ1, and TTYH1. Remarkably, by applying our hNSC cell cycle phase classifier to human glioblastoma (GBM) tumors, we found that Neural G0 subpopulations as a prominent tumor-specific cellular subclass of GBM tumors, which, similar to NSCs, does not overlap with proliferative cell cycle phases. We further identified modulators of Neural G0 via CRISPR-Cas9 screens, revealing highly significant enrichment for tumor suppressor genes associated with brain tumors. In depth analysis of five of these Neural G0 modulatory genes, including CREBBP, NF2, PTPN14, TAOK1, or TP53, revealed that they promote compartmentalization of G0/G1 phase and expression of genes associated with Neural G0. Our results suggest that Neural G0 is a dynamic cell state in mammalian NSCs, that a subset of GBM cells maintain and is modulated by genes commonly found altered in GBM.
The coordination of developmental potential and proliferation in stem and progenitor cells is essential for mammalian development and tissue homeostasis. We performed CRISPR-Cas9 screens in human neural progenitor cells (hNPCs) and identified genes, including CREBBP, NF2, PTPN14, TAOK1, or TP53, that limit expansion. Knockout of these genes causes increased hNPC proliferation via skipping of a transient G0-like state, characterized by expression of genes associated with quiescent neural stem cells and neural development and molecular features of quiescent cells (e.g., hypophosphorylated Rb, low CDK2 activity, and p27 stabilization). Single-cell RNA- sequencing of hNPCs revealed distinct G0/G1 populations, altered in G0-skip mutants through both distinct and convergent downstream effectors, including cell cycle, Hippo- YAP, and novel targets. Our results provide a molecular and phenotypic portrait of expanding hNPCs including a gene expression map of their cell cycle and characterization of antiproliferative factors that regulate cell cycle exit with likely roles in maintaining developmental potential.
The apolipoprotein E4 (APOE4) variant is the single greatest genetic risk factor for sporadic Alzheimer's disease (sAD). However, the cell-type-specific functions of APOE4 in relation to AD pathology remain understudied. Here, we utilize CRISPR/Cas9 and induced pluripotent stem cells (iPSCs) to examine APOE4 effects on human brain cell types. Transcriptional profiling identified hundreds of differentially expressed genes in each cell type, with the most affected involving synaptic function (neurons), lipid metabolism (astrocytes), and immune response (microglia-like cells). APOE4 neurons exhibited increased synapse number and elevated Ab42 secretion relative to isogenic APOE3 cells while APOE4 astrocytes displayed impaired Ab uptake and cholesterol accumulation. Notably, APOE4 microglia-like cells exhibited altered morphologies, which correlated with reduced Ab phagocytosis. Consistently, converting APOE4 to APOE3 in brain cell types from sAD iPSCs was sufficient to attenuate multiple AD-related pathologies. Our study establishes a reference for human cell-type-specific changes associated with the APOE4 variant.
Abstract Synthetic lethality occurs when mutations in two otherwise nonessential genes are combined to cause lethality. Because cancer is a disease of genetic alteration, synthetic lethality has been heralded as a method to identity candidate therapeutic targets, e.g., where a target gene could be "synthetic lethal" with a cancer driver mutation. To define synthetic lethal relationships in glioblastoma (GBM), we have performed multiple focused-set and genome-wide CRISPR-Cas9 lethality screens in patient-derived GBM stem-like cells (GSCs) and nontransformed human neural progenitor cells. Because GSCs isolates likely represent a sub-clone of the original tumor and we can determine GSCs' genetic and epigenetic makeup, it is possible to address the concept of synthetic lethality for GBM. To this end, we recently performed comprehensive CRISPR-Cas9 retests of all scoring GBM lethal genes (>900) from screens in three patient isolates with different and overlapping genetic drivers. We then performed secondary retests of high-priority gene targets in 13 GSC harboring various alterations commonly found in GBMs, e.g., EGFRamp, NF1mut, PIK3CAmut, PTENloss/mut, TP53mut, etc. The results were surprising, first in what we did not find. We failed to find synthetic lethal targets for TP53loss/mut, RB1mut, or TERT expression, suggesting that synthetic lethal relationships for these alterations may not exist for GBM. Second, NF1mut interactors defined a broader class of synthetic lethal targets with general overactivity of the RTK/Ras pathway, which can arise from various activating lesions. Third, candidate synthetic lethal relationships can be observed, but, so far, only with EGFRamp, MYC/MYCNamp, and PTEN/PIK3CA alterations. Thus, in general our results suggest that the majority of synthetic lethal relationships in GBM arise from oncogenic activation of the RTK/Ras and PI-3 kinase pathway or amplification of MYC/MYCN. (Synthetic lethal targets will be revealed and discussed at the meeting.) Citation Format: Pia Hoellerbauer, Sonali Arora, Megan Kufeld, Lucas Carter, Emily J. Girard, Heather Feldman, Philip Corrin, James M. Olson, Patrick J. Paddison. Emerging principles in synthetic lethality in glioblastoma [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2018; 2018 Apr 14-18; Chicago, IL. Philadelphia (PA): AACR; Cancer Res 2018;78(13 Suppl):Abstract nr 413.
Abstract Glioblastoma (GBM) is the most aggressive and common form of adult brain cancer and is among the deadliest cancers, with a median survival of 15 months using standard-of-care therapies. Thus, improved treatments for GBM are desperately needed. To identify new GBM molecular therapeutic targets, our group has performed multiple functional genetic screens in patient-derived GBM stem-like cells (GSCs) and non-transformed human neural stem and progenitor cells (NPCs), which represent non-neoplastic controls. These screens, which have used both RNAi and CRISPR-Cas9 platforms, have led to the identification of several key molecular vulnerabilities in GSCs, including GBM-specific defects in: 3' splice site recognition, kinetochore function, and loss of redundancy between the kinase activities of PKMYT1 and WEE1. At this meeting we will present an overview of these studies, as well as our current efforts to: comprehensively retest all GBM-specific vulnerabilities scoring in these screens; address whether vulnerabilities arise from specific genetic alterations in patient samples (e.g. NF1 loss or PTEN loss); determine whether inhibition of specific molecular targets blocks tumor growth and/or maintenance; and demonstrate the mode of GBM-specific death for particular targets (e.g., cell cycle arrest, apoptosis, etc). In addition, we will highlight both strengths and limitations of applications of CRISPR-Cas9 technologies in patient samples. Collectively, our work illustrates the power of combining functional genetic technologies with the use of patient isolates to identify novel, patient-specific therapeutic strategies for GBM. Citation Format: Pia Hoellerbauer, Heather Feldman, Sonali Arora, Lucas Carter, Emily J. Girard, Philip Corrin, James M. Olson, Eric C. Holland, Patrick J. Paddison. Precision functional genomics for glioblastoma: Identifying molecular therapeutic targets using CRISPR-Cas9 and RNAi technologies in patient isolates [abstract]. In: Proceedings of the AACR Precision Medicine Series: Opportunities and Challenges of Exploiting Synthetic Lethality in Cancer; Jan 4-7, 2017; San Diego, CA. Philadelphia (PA): AACR; Mol Cancer Ther 2017;16(10 Suppl):Abstract nr B14.