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Dive into the research topics where Robert L. Martuza is active.

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Featured researches published by Robert L. Martuza.


Cell | 1993

A novel moesin-, ezrin-, radixin-like gene is a candidate for the neurofibromatosis 2 tumor suppressor

James A. Trofatter; Mia MacCollin; Joni L. Rutter; Jill R. Murrell; Mabel P. Duyao; Dilys M. Parry; Roswell Eldridge; Nikolai Kley; Anil G. Menon; Karen Pulaski; Volker H. Haase; Christine Ambrose; David J. Munroe; Catherine Bove; Jonathan L. Haines; Robert L. Martuza; Marcy E. MacDonald; Bernd R. Seizinger; M. Priscilla Short; Alan J. Buckler; James F. Gusella

Neurofibromatosis 2 (NF2) is a dominantly inherited disorder characterized by the occurrence of bilateral vestibular schwannomas and other central nervous system tumors including multiple meningiomas. Genetic linkage studies and investigations of both sporadic and familial tumors suggest that NF2 is caused by inactivation of a tumor suppressor gene in chromosome 22q12. We have identified a candidate gene for the NF2 tumor suppressor that has suffered nonoverlapping deletions in DNA from two independent NF2 families and alterations in meningiomas from two unrelated NF2 patients. The candidate gene encodes a 587 amino acid protein with striking similarity to several members of a family of proteins proposed to link cytoskeletal components with proteins in the cell membrane. The NF2 gene may therefore constitute a novel class of tumor suppressor gene.


Science | 2014

Single-cell RNA-seq highlights intratumoral heterogeneity in primary glioblastoma

Anoop P. Patel; Itay Tirosh; John J. Trombetta; Alex K. Shalek; Shawn M. Gillespie; Hiroaki Wakimoto; Daniel P. Cahill; Brian V. Nahed; William T. Curry; Robert L. Martuza; David N. Louis; Orit Rozenblatt-Rosen; Mario L. Suvà; Aviv Regev; Bradley E. Bernstein

Cancer at single-cell resolution Single-cell sequencing can illuminate the genetic properties of brain cancers and reveal heterogeneity within a tumor. Patel et al. examined the genome sequence of single cells isolated from brain glioblastomas. The findings revealed shared chromosomal changes but also extensive transcription variation, including genes related to signaling, which represent potential therapeutic targets. The authors suggest that the variation in tumor cells reflects neural development and that such variation among cancer cells may prove to have clinical significance. Science, this issue p. 1396 Screening individual cancer cells within a brain tumor may help to guide treatment and predict prognosis. Human cancers are complex ecosystems composed of cells with distinct phenotypes, genotypes, and epigenetic states, but current models do not adequately reflect tumor composition in patients. We used single-cell RNA sequencing (RNA-seq) to profile 430 cells from five primary glioblastomas, which we found to be inherently variable in their expression of diverse transcriptional programs related to oncogenic signaling, proliferation, complement/immune response, and hypoxia. We also observed a continuum of stemness-related expression states that enabled us to identify putative regulators of stemness in vivo. Finally, we show that established glioblastoma subtype classifiers are variably expressed across individual cells within a tumor and demonstrate the potential prognostic implications of such intratumoral heterogeneity. Thus, we reveal previously unappreciated heterogeneity in diverse regulatory programs central to glioblastoma biology, prognosis, and therapy.


Gene Therapy | 2000

Conditionally replicating herpes simplex virus mutant, G207 for the treatment of malignant glioma: results of a phase I trial

James M. Markert; M D Medlock; Samuel D. Rabkin; George Yancey Gillespie; Tomoki Todo; William D. Hunter; Cheryl A. Palmer; Frank Feigenbaum; C Tornatore; F Tufaro; Robert L. Martuza

G207 is a conditionally replicating derivative of herpes simplex virus (HSV) type-1 strain F engineered with deletions of both γ134.5 loci and a lacZ insertion disabling the UL39 gene. We have demonstrated the efficacy of G207 in treating malignant glial tumors in athymic mice, as well as the safety of intracerebral G207 inoculation in mice and in Aotus nancymai. We sought to determine the safety of G207 inoculation into cerebral malignant glial tumors in humans. Criteria for inclusion into this dose-escalation study were the diagnosis of histologically proven malignant glioma, Karnofsky score ⩾70, recurrence despite surgery and radiation therapy, and an enhancing lesion greater than 1 cm in diameter. Serial magnetic resonance images were obtained for volumetric analysis. The trial commenced at a dose of 106 plaque forming units (p.f.u.) inoculated at a single enhancing site and was completed when the 21st patient was inoculated with 3 × 109 p.f.u. at five sites. While adverse events were noted in some patients, no toxicity or serious adverse events could unequivocally be ascribed to G207. No patient developed HSV encephalitis. We found radiographic and neuropathologic evidence suggestive of anti-tumor activity and long-term presence of viral DNA in some cases.


Science | 1991

Experimental therapy of human glioma by means of a genetically engineered virus mutant

Robert L. Martuza; Amy Malick; James M. Markert; K. L. Ruffner; Donald M. Coen

Malignant gliomas are the most common malignant brain tumors and are almost always fatal. A thymidine kinase-negative mutant of herpes simplex virus-1 (dlsptk) that is attenuated for neurovirulence was tested as a possible treatment for gliomas. In cell culture, dlsptk killed two long-term human glioma lines and three short-term human glioma cell populations. In nude mice with implanted subcutaneous and subrenal U87 human gliomas, intraneoplastic inoculation of dlsptk caused growth inhibition. In nude mice with intracranial U87 gliomas, intraneoplastic inoculation of dlsptk prolonged survival. Genetically engineered viruses such as dlsptk merit further evaluation as novel antineoplastic agents.


Nature Medicine | 1995

Attenuated multi-mutated herpes simplex virus-1 for the treatment of malignant gliomas.

Toshihiro Mineta; Samuel D. Rabkin; Takahito Yazaki; William D. Hunter; Robert L. Martuza

We have created a double mutant of the herpes simplex virus (HSV) type 1 (termed G207) with favourable properties for treating human malignant brain tumours: replication–competence in glioblastoma cells (and other dividing cells), attenuated neurovirulence, temperature sensitivity, ganciclovir hypersensitivity, and the presence of an easily detectable histochemical marker. G207 has deletions at both γ34.5 (RL1) loci and a lacZ gene insertion inactivating the ICP6 gene (UL39). G207 kills human glioma cells in monolayer cultures. In nude mice harbouring subcutaneous or intracerebral U–87MG gliomas, intraneoplastic inoculation with G207 causes decreased tumour growth and/or prolonged survival. G207 is avirulent upon intracerebral inoculation of mice and HSV–sensitive non–human primates. These results suggest that G207 should be considered for clinical evaluation in the treatment of glioblastomas.


Nature Medicine | 2001

Replication-selective virotherapy for cancer : Biological principles, risk management and future directions

David Kirn; Robert L. Martuza; James Zwiebel

In the search for novel cancer therapies that can be used in conjunction with existing treatments, one promising area of research is the use of viral vectors and whole viruses. This review describes the underlying biological principles and current status of the field, outlines approaches for improving clinical effectiveness and discusses the unique safety and regulatory issues surrounding viral therapies.


The New England Journal of Medicine | 1988

Neurofibromatosis 2 (bilateral acoustic neurofibromatosis).

Robert L. Martuza; Roswell Eldridge

Mise a jour des connaissances: clinique et diagnostic differentiel, evaluation et traitement, conseils genetiques, etude biologiques et genetiques


Proceedings of the National Academy of Sciences of the United States of America | 2009

Assessment of therapeutic efficacy and fate of engineered human mesenchymal stem cells for cancer therapy

Laura S. Sasportas; Randa Kasmieh; Hiroaki Wakimoto; Shawn D. Hingtgen; Jeroen A. J. M. van de Water; Gayatry Mohapatra; Jose-Luiz Figueiredo; Robert L. Martuza; Ralph Weissleder; Khalid Shah

The poor prognosis of patients with aggressive and invasive cancers combined with toxic effects and short half-life of currently available treatments necessitate development of more effective tumor selective therapies. Mesenchymal stem cells (MSCs) are emerging as novel cell-based delivery agents; however, a thorough investigation addressing their therapeutic potential and fate in different cancer models is lacking. In this study, we explored the engineering potential, fate, and therapeutic efficacy of human MSCs in a highly malignant and invasive model of glioblastoma. We show that engineered MSC retain their “stem-like” properties, survive longer in mice with gliomas than in the normal brain, and migrate extensively toward gliomas. We also show that MSCs are resistant to the cytokine tumor necrosis factor apoptosis ligand (TRAIL) and, when engineered to express secreted recombinant TRAIL, induce caspase-mediated apoptosis in established glioma cell lines as well as CD133-positive primary glioma cells in vitro. Using highly malignant and invasive human glioma models and employing real-time imaging with correlative neuropathology, we demonstrate that MSC-delivered recombinant TRAIL has profound anti-tumor effects in vivo. This study demonstrates the efficacy of diagnostic and therapeutic MSC in preclinical glioma models and forms the basis for developing stem cell-based therapies for different cancers.


Cell | 1987

Genetic linkage of von Recklinghausen neurofibromatosis to the nerve growth factor receptor gene

B.R. Seizinger; Guy A. Rouleau; Laurie J. Ozelius; A.H. Lane; Ann G. Faryniarz; Moses V. Chao; S Huson; Bruce R. Korf; Dilys M. Parry; Margaret A. Pericak-Vance; Francis S. Collins; Wendy Hobbs; B.G. Falcone; J.A. Iannazzi; J.C. Roy; P. St George-Hyslop; Rudolph E. Tanzi; Mark Bothwell; Meena Upadhyaya; Peter S. Harper; A.E. Goldstein; D.L. Hoover; J.L. Bader; M.A. Spence; J.J. Mulvihill; A.S. Aylsworth; J. M. Vance; G.O.D. Rossenwasser; Perry C. Gaskell; A. D. Roses

von Recklinghausen neurofibromatosis (VRNF) is one of the most common inherited disorders affecting the human nervous system. VRNF is transmitted as an autosomal dominant defect with high penetrance but variable expressivity. The disorder is characterized clinically by hyperpigmented patches of skin (café au lait macules, axillary freckles) and by multiple tumors of peripheral nerve, spinal nerve roots, and brain (neurofibromas, optic gliomas). These tumors can cause disfigurement, paralysis, blindness, and death. We have determined the chromosomal location of the VRNF gene by genetic linkage analysis using DNA markers. The VRNF gene is genetically linked to the locus encoding nerve growth factor receptor, located on the long arm of chromosome 17 in the region 17q12----17q22. However, crossovers with the VRNF locus suggest that a mutation in the nerve growth factor receptor gene itself is unlikely to be the fundamental defect responsible for the VRNF phenotype.


Proceedings of the National Academy of Sciences of the United States of America | 2001

Oncolytic herpes simplex virus vector with enhanced MHC class I presentation and tumor cell killing

Tomoki Todo; Robert L. Martuza; Samuel D. Rabkin; Paul A. Johnson

Oncolytic herpes simplex virus type 1 (HSV-1) vectors are promising therapeutic agents for cancer. Their efficacy depends on the extent of both intratumoral viral replication and induction of a host antitumor immune response. To enhance these properties while employing ample safeguards, two conditionally replicating HSV-1 vectors, termed G47Δ and R47Δ, have been constructed by deleting the α47 gene and the promoter region of US11 from γ34.5-deficient HSV-1 vectors, G207 and R3616, respectively. Because the α47 gene product is responsible for inhibiting the transporter associated with antigen presentation (TAP), its absence led to increased MHC class I expression in infected human cells. Moreover, some G47Δ-infected human melanoma cells exhibited enhanced stimulation of matched antitumor T cell activity. The deletion also places the late US11 gene under control of the immediate-early α47 promoter, which suppresses the reduced growth properties of γ34.5-deficient mutants. G47Δ and R47Δ showed enhanced viral growth in a variety of cell lines, leading to higher virus yields and enhanced cytopathic effect in tumor cells. G47Δ was significantly more efficacious in vivo than its parent G207 at inhibiting tumor growth in both immune-competent and immune-deficient animal models. Yet, when inoculated into the brains of HSV-1-sensitive A/J mice at 2 × 106 plaque forming units, G47Δ was as safe as G207. These results suggest that G47Δ may have enhanced antitumor activity in humans.

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