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Ligon, Keith

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Ligon

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Keith

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Ligon, Keith

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Now showing 1 - 10 of 12
  • Publication

    DNA Fragmentation Simulation Method (FSM) and Fragment Size Matching Improve aCGH Performance of FFPE Tissues

    (Public Library of Science, 2012) Craig, Justin M.; Vena, Natalie; Idbaih, Ahmed; Fouse, Shaun D.; Ozek, Memet; Sav, Aydin; Margraf, Linda R.; Eberhart, Charles G.; Norden, Andrew D.; Ramkissoon, Shakti H.; Hill, D. Ashley; Kieran, Mark W.; Wen, Patrick; Loda, Massimo; Santagata, Sandro; Ligon, Keith; Ligon, Azra

    Whole-genome copy number analysis platforms, such as array comparative genomic hybridization (aCGH) and single nucleotide polymorphism (SNP) arrays, are transformative research discovery tools. In cancer, the identification of genomic aberrations with these approaches has generated important diagnostic and prognostic markers, and critical therapeutic targets. While robust for basic research studies, reliable whole-genome copy number analysis has been unsuccessful in routine clinical practice due to a number of technical limitations. Most important, aCGH results have been suboptimal because of the poor integrity of DNA derived from formalin-fixed paraffin-embedded (FFPE) tissues. Using self-hybridizations of a single DNA sample we observed that aCGH performance is significantly improved by accurate DNA size determination and the matching of test and reference DNA samples so that both possess similar fragment sizes. Based on this observation, we developed a novel DNA fragmentation simulation method (FSM) that allows customized tailoring of the fragment sizes of test and reference samples, thereby lowering array failure rates. To validate our methods, we combined FSM with Universal Linkage System (ULS) labeling to study a cohort of 200 tumor samples using Agilent 1 M feature arrays. Results from FFPE samples were equivalent to results from fresh samples and those available through the glioblastoma Cancer Genome Atlas (TCGA). This study demonstrates that rigorous control of DNA fragment size improves aCGH performance. This methodological advance will permit the routine analysis of FFPE tumor samples for clinical trials and in daily clinical practice.

  • Publication

    Angiomatous meningiomas have a distinct genetic profile with multiple chromosomal polysomies including polysomy of chromosome 5

    (Impact Journals LLC, 2014) Abedalthagafi, Malak; Merrill, Parker H.; Bi, Wenya; Jones, Robert T.; Listewnik, Marc L.; Ramkissoon, Shakti H.; Thorner, Aaron R.; Dunn, Ian; Beroukhim, Rameen; Alexander, Brian; Brastianos, Priscilla; Francis, Joshua M.; Folkerth, Rebecca D.; Ligon, Keith; Hummelen, Paul Van; Ligon, Azra; Santagata, Sandro

    Meningiomas are a diverse group of tumors with a broad spectrum of histologic features. There are over 12 variants of meningioma, whose genetic features are just beginning to be described. Angiomatous meningioma is a World Health Organization (WHO) meningioma variant with a predominance of blood vessels. They are uncommon and confirming the histopathologic classification can be challenging. Given a lack of biomarkers that define the angiomatous subtype and limited understanding of the genetic changes underlying its tumorigenesis, we compared the genomic characteristics of angiomatous meningioma to more common meningioma subtypes. While typical grade I meningiomas demonstrate monosomy of chromosome 22 or lack copy number aberrations, 13 of 14 cases of angiomatous meningioma demonstrated a distinct copy number profile – polysomies of at least one chromosome, but often of many, especially in chromosomes 5, 13, and 20. WHO grade II atypical meningiomas with angiomatous features have both polysomies and genetic aberrations characteristic of other atypical meningiomas. Sequencing of over 560 cancer-relevant genes in 16 cases of angiomatous meningioma showed that these tumors lack common mutations found in other variants of meningioma. Our study demonstrates that angiomatous meningiomas have distinct genomic features that may be clinically useful for their diagnosis.

  • Publication

    Rapid, Label-Free Detection of Brain Tumors with Stimulated Raman Scattering Microscopy

    (American Association for the Advancement of Science (AAAS), 2013) Ji, Minbiao; Orringer, Daniel A.; Freudiger, Christian Wilhelm; Ramkissoon, Shakti H.; Liu, Xiaohui; Lau, Darryl; Golby, Alexandra; Norton, Isaiah Hakim; Hayashi, Marika; Agar, Nathalie; Young, Geoffrey; Spino, Cathie; Santagata, Sandro; Camelo-Piragua, Sandra; Ligon, Keith; Sagher, Oren; Xie, Xiaoliang

    Surgery is an essential component in the treatment of brain tumors. However, delineating tumor from normal brain remains a major challenge. We describe the use of stimulated Raman scattering (SRS) microscopy for differentiating healthy human and mouse brain tissue from tumor-infiltrated brain based on histoarchitectural and biochemical differences. Unlike traditional histopathology, SRS is a label-free technique that can be rapidly performed in situ. SRS microscopy was able to differentiate tumor from nonneoplastic tissue in an infiltrative human glioblastoma xenograft mouse model based on their different Raman spectra. We further demonstrated a correlation between SRS and hematoxylin and eosin microscopy for detection of glioma infiltration (κ = 0.98). Finally, we applied SRS microscopy in vivo in mice during surgery to reveal tumor margins that were undetectable under standard operative conditions. By providing rapid intraoperative assessment of brain tissue, SRS microscopy may ultimately improve the safety and accuracy of surgeries where tumor boundaries are visually indistinct.

  • Publication

    Delivery of Functional Anti-miR-9 by Mesenchymal Stem Cell–derived Exosomes to Glioblastoma Multiforme Cells Conferred Chemosensitivity

    (Nature Publishing Group, 2013) Munoz, Jessian L; Bliss, Sarah A; Greco, Steven J; Ramkissoon, Shakti H.; Ligon, Keith; Rameshwar, Pranela

    Glioblastoma multiforme (GBM), the most common and lethal tumor of the adult brain, generally shows chemo- and radioresistance. MicroRNAs (miRs) regulate physiological processes, such as resistance of GBM cells to temozolomide (TMZ). Although miRs are attractive targets for cancer therapeutics, the effectiveness of this approach requires targeted delivery. Mesenchymal stem cells (MSCs) can migrate to the sites of cancers, including GBM. We report on an increase in miR-9 in TMZ-resistant GBM cells. miR-9 was involved in the expression of the drug efflux transporter, P-glycoprotein. To block miR-9, methods were developed with Cy5-tagged anti-miR-9. Dye-transfer studies indicated intracellular communication between GBM cells and MSCs. This occurred by gap junctional intercellular communication and the release of microvesicles. In both cases, anti-miR-9 was transferred from MSCs to GBM cells. However, the major form of transfer occurred with the microvesicles. The delivery of anti-miR-9 to the resistant GBM cells reversed the expression of the multidrug transporter and sensitized the GBM cells to TMZ, as shown by increased cell death and caspase activity. The data showed a potential role for MSCs in the functional delivery of synthetic anti-miR-9 to reverse the chemoresistance of GBM cells.

  • Publication

    Transformation by the R Enantiomer of 2-Hydroxyglutarate Linked to EglN Activation

    (2013) Koivunen, Peppi; Lee, Sungwoo; Duncan, Christopher G.; Lopez, Giselle; Lu, Gang; Ramkissoon, Shakti H.; Losman, Julie-Aurore; Joensuu, Päivi; Bergmann, Ulrich; Gross, Stefan; Travins, Jeremy; Weiss, Samuel; Looper, Ryan; Ligon, Keith; Verhaak, Roel G.W.; Yan, Hai; Kaelin, William

    The identification of succinate dehydrogenase (SDH), fumarate hydratase (FH), and isocitrate dehydrogenase (IDH) mutations in human cancers has rekindled the idea that altered cellular metabolism can transform cells. Inactivating SDH and FH mutations cause the accumulation of succinate and fumarate, respectively, which can inhibit 2-oxoglutarate (2-OG)-dependent enzymes, including the EglN prolyl 4-hydroxylases that mark the HIF transcription factor for polyubiquitylation and proteasomal degradation 1. Inappropriate HIF activation is suspected of contributing to the pathogenesis of SDH-defective and FH-defective tumors but can suppress tumor growth in some other contexts. IDH1 and IDH2, which catalyze the interconversion of isocitrate and 2-OG, are frequently mutated in human brain tumors and leukemias. The resulting mutants display the neomorphic ability to convert 2-OG to the R-enantiomer of 2-hydroxyglutarate (R-2HG) 2, 3. Here we show that R-2HG, but not S-2HG, stimulates EglN activity leading to diminished HIF levels, which enhances the proliferation and soft agar growth of human astrocytes.

  • Publication

    MAPK activation and HRAS mutation identified in pituitary spindle cell oncocytoma

    (Impact Journals LLC, 2016) Miller, Michael B.; Bi, Wenya; Ramkissoon, Lori A.; Kang, Yun Jee; Abedalthagafi, Malak; Knoff, David S.; Agarwalla, Pankaj Kumar; Wen, Patrick; Reardon, David; Alexander, Brian; Laws, Edward; Dunn, Ian; Beroukhim, Rameen; Ligon, Keith; Ramkissoon, Shakti H.

    Pituitary spindle cell oncocytoma (SCO) is an uncommon primary pituitary neoplasm that presents with mass effect on adjacent neurovascular structures, similar to non-hormone-producing pituitary adenomas. To determine the molecular etiology of SCO, we performed exome sequencing on four SCO cases, with matched normal controls, to assess somatic mutations and copy number alterations. Our analysis revealed a low mutation rate and a copy-neutral profile, consistent with the low-grade nature of this tumor. However, we identified a co-occurring somatic HRAS (p.Q61R) activating point mutation and MEN1 frameshift mutation (p.L117fs) present in a primary and recurrent tumor from one patient. Other SCOs demonstrated mutations in SND1 and FAT1, which are associated with MAPK pathway activation. Immunohistochemistry across the SCO cohort demonstrated robust MAPK activity in all cases (n=4), as evidenced by strong phospho-ERK staining, while phospho-AKT levels suggested only basal levels of PI3K pathway activation. Taken together, this identifies the MAPK signaling pathway as a novel therapeutic target for spindle cell oncocytoma, which may offer a powerful adjunct for aggressive tumors refractory to surgical resection.

  • Publication

    Combination inhibition of PI3K and mTORC1 yields durable remissions in orthotopic patient-derived xenografts of HER2-positive breast cancer brain metastases

    (2016) Ni, Jing; Ramkissoon, Shakti H.; Xie, Shaozhen; Goel, Shom; Stover, Daniel G.; Guo, Hanbing; Luu, Victor; Marco, Eugenio; Ramkissoon, Lori A.; Kang, Yun Jee; Hayashi, Marika; Nguyen, Quang-De; Ligon, Azra; Du, Rose; Claus, Elizabeth; Alexander, Brian; Yuan, Guo-Cheng; Wang, Zhigang C.; Iglehart, J. Dirk; Krop, Ian; Roberts, Thomas; Winer, Eric; Lin, Nancy; Ligon, Keith; Zhao, Jean

    Brain metastases represent the greatest clinical challenge in treating HER2-positive breast cancer. We report the development of orthotopic patient-derived xenografts (PDXs) of HER2-expressing breast cancer brain metastases (BCBM), and their use for the identification of targeted combination therapies. Combined inhibition of PI3K and mTOR resulted in durable tumor regressions in three of five PDXs, and therapeutic response correlated with reduction of 4EBP1 phosphorylation. The two non-responding PDXs showed hypermutated genomes with enrichment of mutations in DNA repair genes, suggesting an association of genomic instability with therapeutic resistance. These findings suggest that a biomarker-driven clinical trial of PI3K inhibitor plus an mTOR inhibitor should be conducted for patients with HER2-positive BCBM.

  • Publication

    MYB-QKI rearrangements in Angiocentric Glioma drive tumorigenicity through a tripartite mechanism

    (2016) Bandopadhayay, Pratiti; Ramkissoon, Lori A.; Jain, Payal; Bergthold, Guillaume; Wala, Jeremiah; Zeid, Rhamy; Schumacher, Steven E.; Urbanski, Laura; O’Rourke, Ryan; Gibson, William; Pelton, Kristine; Ramkissoon, Shakti H.; Han, Harry J.; Zhu, Yuankun; Choudhari, Namrata; Silva, Amanda; Boucher, Katie; Henn, Rosemary E.; Kang, Yun Jee; Knoff, David; Paolella, Brenton R.; Gladden-Young, Adrianne; Varlet, Pascale; Pages, Melanie; Horowitz, Peleg M.; Federation, Alexander; Malkin, Hayley; Tracy, Adam; Seepo, Sara; Ducar, Matthew; Hummelen, Paul Van; Santi, Mariarita; Buccoliero, Anna Maria; Scagnet, Mirko; Bowers, Daniel C.; Giannini, Caterina; Puget, Stephanie; Hawkins, Cynthia; Tabori, Uri; Klekner, Almos; Bognar, Laszlo; Burger, Peter C.; Eberhart, Charles; Rodriguez, Fausto J.; Hill, D. Ashley; Mueller, Sabine; Haas-Kogan, Daphne; Phillips, Joanna J.; Santagata, Sandro; Stiles, Charles D.; Bradner, James E; Jabado, Nada; Goren, Alon; Grill, Jacques; Ligon, Azra; Goumnerova, Liliana; Waanders, Angela J.; Storm, Phillip B.; Kieran, Mark W.; Ligon, Keith; Beroukhim, Rameen; Resnick, Adam C.

    Angiocentric gliomas are pediatric low-grade gliomas (PLGGs) without known recurrent genetic drivers. We performed genomic analysis of new and published data from 249 PLGGs including 19 Angiocentric Gliomas. We identified MYB-QKI fusions as a specific and single candidate driver event in Angiocentric Gliomas. In vitro and in vivo functional studies show MYB-QKI rearrangements promote tumorigenesis through three mechanisms: MYB activation by truncation, enhancer translocation driving aberrant MYB-QKI expression, and hemizygous loss of the tumor suppressor QKI. This represents the first example of a single driver rearrangement simultaneously transforming cells via three genetic and epigenetic mechanisms in a tumor.

  • Publication

    SHMT2 drives glioma cell survival in the tumor microenvironment but imposes a dependence on glycine clearance

    (2015) Kim, Dohoon; Fiske, Brian P.; Birsoy, Kivanc; Freinkman, Elizaveta; Kami, Kenjiro; Possemato, Richard; Chudnovsky, Yakov; Pacold, Michael E.; Chen, Walter; Cantor, Jason R.; Shelton, Laura M.; Gui, Dan; Kwon, Manjae; Ramkissoon, Shakti H.; Ligon, Keith; Kang, Seong Woo; Snuderl, Matija; Heiden, Matthew G. Vander; Sabatini, David M.

    SUMMARY Cancer cells adapt their metabolic processes to support rapid proliferation, but less is known about how cancer cells alter metabolism to promote cell survival in a poorly vascularized tumor microenvironment1–3. Here, we identify a key role for serine and glycine metabolism in the survival of brain cancer cells within the ischemic zones of gliomas. In human glioblastoma multiforme (GBM), mitochondrial serine hydroxymethyltransferase (SHMT2) and glycine decarboxylase (GLDC) are highly expressed in the pseudopalisading cells that surround necrotic foci. We find that SHMT2 activity limits that of pyruvate kinase (PKM2) and reduces oxygen consumption, eliciting a metabolic state that confers a profound survival advantage to cells in poorly vascularized tumor regions. GLDC inhibition impairs cells with high SHMT2 levels as the excess glycine not metabolized by GLDC can be converted to the toxic molecules aminoacetone and methylglyoxal. Thus, SHMT2 is required for cancer cells to adapt to the tumor environment, but also renders these cells sensitive to glycine cleavage system inhibition.

  • Publication

    Temozolomide resistance in glioblastoma occurs by miRNA-9-targeted PTCH1, independent of sonic hedgehog level

    (Impact Journals LLC, 2015) Munoz, Jessian L.; Rodriguez-Cruz, Vivian; Ramkissoon, Shakti H.; Ligon, Keith; Greco, Steven J.; Rameshwar, Pranela

    Glioblastoma Multiforme (GBM), the most common and lethal adult primary tumor of the brain, showed a link between Sonic Hedgehog (SHH) pathway in the resistance to temozolomide (TMZ). PTCH1, the SHH receptor, can tonically represses signaling by endocytosis. We asked how the decrease in PTCH1 in GBM cells could lead to TMZ-resistance. TMZ resistant GBM cells have increased PTCH1 mRNA and reduced protein. Knockdown of Dicer, a Type III RNAase, indicated that miRNAs can explain the decreased PTCH1 in TMZ resistant cells. Computational studies, real-time PCR, reporter gene studies, western blots, target protector oligos and ectopic expression identified miR-9 as the target of PTCH1 in resistant GBM cells with concomitant activation of SHH signaling. MiR-9 mediated increases in the drug efflux transporters, MDR1 and ABCG2. MiR-9 was increased in the tissues from GBM patients and in an early passage GBM cell line from a patient with recurrent GBM but not from a naïve patient. Pharmacological inhibition of SHH signaling sensitized the GBM cells to TMZ. Taken together, miR-9 targets PTCH1 in GBM cells by a SHH-independent method in GBM cells for TMZ resistance. The identified pathways could lead to new strategies to target GBM with combinations of drugs.