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Dive into the research topics where Dale L. Greiner is active.

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Featured researches published by Dale L. Greiner.


Journal of Immunology | 2005

Human Lymphoid and Myeloid Cell Development in NOD/LtSz-scid IL2Rγnull Mice Engrafted with Mobilized Human Hemopoietic Stem Cells

Leonard D. Shultz; Bonnie L. Lyons; Lisa M. Burzenski; Bruce Gott; Xiaohua Chen; Stanley Chaleff; Malak Kotb; Stephen D. Gillies; Marie King; Julie Mangada; Dale L. Greiner; Rupert Handgretinger

Ethical considerations constrain the in vivo study of human hemopoietic stem cells (HSC). To overcome this limitation, small animal models of human HSC engraftment have been used. We report the development and characterization of a new genetic stock of IL-2R common γ-chain deficient NOD/LtSz-scid (NOD-scid IL2Rγnull) mice and document their ability to support human mobilized blood HSC engraftment and multilineage differentiation. NOD-scid IL2Rγnull mice are deficient in mature lymphocytes and NK cells, survive beyond 16 mo of age, and even after sublethal irradiation resist lymphoma development. Engraftment of NOD-scid IL2Rγnull mice with human HSC generate 6-fold higher percentages of human CD45+ cells in host bone marrow than with similarly treated NOD-scid mice. These human cells include B cells, NK cells, myeloid cells, plasmacytoid dendritic cells, and HSC. Spleens from engrafted NOD-scid IL2Rγnull mice contain human Ig+ B cells and lower numbers of human CD3+ T cells. Coadministration of human Fc-IL7 fusion protein results in high percentages of human CD4+CD8+ thymocytes as well human CD4+CD8− and CD4−CD8+ peripheral blood and splenic T cells. De novo human T cell development in NOD-scid IL2Rγnull mice was validated by 1) high levels of TCR excision circles, 2) complex TCRβ repertoire diversity, and 3) proliferative responses to PHA and streptococcal superantigen, streptococcal pyrogenic exotoxin. Thus, NOD-scid IL2Rγnull mice engrafted with human mobilized blood stem cells provide a new in vivo long-lived model of robust multilineage human HSC engraftment.


Nature Reviews Immunology | 2007

Humanized mice in translational biomedical research

Leonard D. Shultz; Fumihiko Ishikawa; Dale L. Greiner

The culmination of decades of research on humanized mice is leading to advances in our understanding of human haematopoiesis, innate and adaptive immunity, autoimmunity, infectious diseases, cancer biology and regenerative medicine. In this Review, we discuss the development of these new generations of humanized mice, how they will facilitate translational research in several biomedical disciplines and approaches to overcome the remaining limitations of these models.


Cell | 2014

Generation of Functional Human Pancreatic β Cells In Vitro

Felicia W. Pagliuca; Jeffrey R. Millman; Mads Gürtler; Michael Saris Segel; Alana Van Dervort; Jennifer Hyoje Ryu; Quinn P. Peterson; Dale L. Greiner; Douglas A. Melton

The generation of insulin-producing pancreatic β cells from stem cells in vitro would provide an unprecedented cell source for drug discovery and cell transplantation therapy in diabetes. However, insulin-producing cells previously generated from human pluripotent stem cells (hPSC) lack many functional characteristics of bona fide β cells. Here, we report a scalable differentiation protocol that can generate hundreds of millions of glucose-responsive β cells from hPSC in vitro. These stem-cell-derived β cells (SC-β) express markers found in mature β cells, flux Ca(2+) in response to glucose, package insulin into secretory granules, and secrete quantities of insulin comparable to adult β cells in response to multiple sequential glucose challenges in vitro. Furthermore, these cells secrete human insulin into the serum of mice shortly after transplantation in a glucose-regulated manner, and transplantation of these cells ameliorates hyperglycemia in diabetic mice.


Cell | 2008

T Cell-Specific siRNA Delivery Suppresses HIV-1 Infection in Humanized Mice

Priti Kumar; Hong Seok Ban; Sangsoo Kim; Haoquan Wu; Todd Pearson; Dale L. Greiner; Amale Laouar; Jiahong Yao; Viraga Haridas; Katsuyoshi Habiro; Yong-Guang Yang; Ji Hoon Jeong; Kuen Yong Lee; Yong Hee Kim; Sung Wan Kim; Matthias Peipp; Georg H. Fey; N. Manjunath; Leonard D. Shultz; Sang Kyung Lee; Premlata Shankar

Evaluation of the therapeutic potential of RNAi for HIV infection has been hampered by the challenges of siRNA delivery and lack of suitable animal models. Using a delivery method for T cells, we show that siRNA treatment can dramatically suppress HIV infection. A CD7-specific single-chain antibody was conjugated to oligo-9-arginine peptide (scFvCD7-9R) for T cell-specific siRNA delivery in NOD/SCIDIL2rgamma-/- mice reconstituted with human lymphocytes (Hu-PBL) or CD34+ hematopoietic stem cells (Hu-HSC). In HIV-infected Hu-PBL mice, treatment with anti-CCR5 (viral coreceptor) and antiviral siRNAs complexed to scFvCD7-9R controlled viral replication and prevented the disease-associated CD4 T cell loss. This treatment also suppressed endogenous virus and restored CD4 T cell counts in mice reconstituted with HIV+ peripheral blood mononuclear cells. Moreover, scFvCD7-9R could deliver antiviral siRNAs to naive T cells in Hu-HSC mice and effectively suppress viremia in infected mice. Thus, siRNA therapy for HIV infection appears to be feasible in a preclinical animal model.


Cell Metabolism | 2012

Thioredoxin-interacting protein mediates ER stress-induced β cell death through initiation of the inflammasome.

Christine M. Oslowski; Takashi Hara; Bryan O'Sullivan-Murphy; Kohsuke Kanekura; Simin Lu; Mariko Hara; Shinsuke Ishigaki; Lihua Julie Zhu; Emiko Hayashi; Simon T. Hui; Dale L. Greiner; Randal J. Kaufman; Rita Bortell; Fumihiko Urano

Recent clinical and experimental evidence suggests that endoplasmic reticulum (ER) stress contributes to the life-and-death decisions of β cells during the progression of type 1 and type 2 diabetes. Although crosstalk between inflammation and ER stress has been suggested to play a significant role in β cell dysfunction and death, a key molecule connecting ER stress to inflammation has not been identified. Here we report that thioredoxin-interacting protein (TXNIP) is a critical signaling node that links ER stress and inflammation. TXNIP is induced by ER stress through the PERK and IRE1 pathways, induces IL-1β mRNA transcription, activates IL-1β production by the NLRP3 inflammasome, and mediates ER stress-mediated β cell death. Collectively, our results suggest that TXNIP is a potential therapeutic target for diabetes and ER stress-related human diseases such as Wolfram syndrome.


Journal of Clinical Investigation | 1998

Long-term survival of skin allografts induced by donor splenocytes and anti-CD154 antibody in thymectomized mice requires CD4(+) T cells, interferon-gamma, and CTLA4.

Thomas G. Markees; Nancy E. Phillips; Ethel J. Gordon; Randolph J. Noelle; Leonard D. Shultz; John P. Mordes; Dale L. Greiner; Aldo A. Rossini

Treatment of C57BL/6 mice with one transfusion of BALB/c spleen cells and anti-CD154 (anti-CD40-ligand) antibody permits BALB/c islet grafts to survive indefinitely and BALB/c skin grafts to survive for approximately 50 d without further intervention. The protocol induces long-term allograft survival, but the mechanism is unknown. We now report: (a) addition of thymectomy to the protocol permitted skin allografts to survive for > 100 d, suggesting that graft rejection in euthymic mice results from thymic export of alloreactive T cells. (b) Clonal deletion is not the mechanism of underlying long-term graft survival, as recipient thymectomized mice were immunocompetent and harbor alloreactive T cells. (c) Induction of skin allograft acceptance initially depended on the presence of IFN-gamma, CTLA4, and CD4(+) T cells. Addition of anti-CTLA4 or anti-IFN-gamma mAb to the protocol was associated with prompt graft rejection, whereas anti-IL-4 mAb had no effect. The role of IFN-gamma was confirmed using knockout mice. (d) Graft survival was associated with the absence of IFN-gamma in the graft. (e) Long-term graft maintenance required the continued presence of CD4(+) T cells. The results suggest that, with modification, our short-term protocol may yield a procedure for the induction of long-term graft survival without prolonged immunosuppression.


Stem Cells | 1998

SCID Mouse Models of Human Stem Cell Engraftment

Dale L. Greiner; RuthAnn M. Hesselton; Leonard D. Shultz

The discovery of the severe combined immunodeficiency (scid) mouse mutation has provided a tool for establishment of small animal models as hosts for the in vivo analysis of normal and malignant human pluripotent hemopoietic stem cells. Intravenous injection of irradiated scid mice with human bone marrow, cord blood, or G‐CSF cytokine‐mobilized peripheral blood mononuclear cells, all rich in human hemopoietic stem cell activity, results in the engraftment of a human hemopoietic system in the murine recipient. This model has been used to identify a pluripotent stem cell, termed “scid‐repopulating cell” (SRC) that is more primitive than any of the hemopoietic stem cell populations identified using the currently available in vitro methodology. In this review, we describe the development and use of this model system, termed Hu‐SRC‐SCID, and summarize the discoveries that have resulted from the investigation of human stem cells in this model. Finally, we detail the recent extension of the original Hu‐SRC‐SCID model system based on the C.B‐17‐scid mouse as the murine host to the Hu‐SRC‐NOD‐SCID model based on the NOD‐scid mouse as the host. The engraftment of human stem cells in the Hu‐SRC‐NOD‐SCID model is enhanced over that observed in the Hu‐SRC‐SCID model and results in exceptionally high levels of human hemopoietic cells in the murine recipient. Future directions to further improve the Hu‐SRC‐NOD‐SCID model system and the potential utility of this model in the preclinical and diagnostic arenas of hematology and oncology are discussed.


Diabetes | 1994

Major histocompatibility complex class I-deficient NOD-B2mnull mice are diabetes and insulitis resistant

David V. Serreze; Edward H. Leiter; Gregory J. Christianson; Dale L. Greiner; Derry C. Roopenian

Specific allelic combinations within the class II region of the major histocompatibility complex (MHC) represent a major genetic component for susceptibility to autoimmune insulin-dependent diabetes mellitus (IDDM) in humans. We produced and used a stock of NOD/Lt mice congenic for a functionally inactivated β2-microglobulin (B2mnull) locus to assess whether there was an absolute requirement for MHC class I expression and/or CD8+ T-cells in diabetogenesis. These NOD-B2mnull mice do not express cell surface MHC class I molecules or produce detectable levels of CD8+ T-cells and are diabetes and insulitis resistant. Previous results from transgenic mouse models indicated that intracellular accumulation of MHC class I molecules negatively affects pancreatic β-cell function and can result in the development of nonautoimmune insulin-dependent diabetes mellitus (IDDM). MHC class I molecules have been shown to accumulate intracellularly in the presence of a disrupted B2m locus, but this mutation does not negatively affect plasma insulin levels in either NOD/Lt mice or in those of a mixed 129 and C57BL/6 genetic background. Interestingly, 14% of the male mice in this mixed background did develop hyperinsulinemia (> 1,500 pM) independent of the disrupted B2m locus, suggesting that these mice could conceivably develop insulin-resistant diabetes. However, none of these mice became diabetic at up to 22 months of age. Thus, elimination of cell surface MHC class I expression with a disrupted B2m gene blocks autoimmune diabetes in NOD/Lt mice, without engendering a separate, distinct form of glucose intolerance.


Journal of Immunology | 2000

Treatment of Allograft Recipients with Donor-Specific Transfusion and Anti-CD154 Antibody Leads to Deletion of Alloreactive CD8+ T Cells and Prolonged Graft Survival in a CTLA4-Dependent Manner

Neal N. Iwakoshi; John P. Mordes; Thomas G. Markees; Nancy E. Phillips; Aldo A. Rossini; Dale L. Greiner

A two-element protocol consisting of one donor-specific transfusion (DST) plus a brief course of anti-CD154 mAb greatly prolongs the survival of murine islet, skin, and cardiac allografts. To study the mechanism of allograft survival, we determined the fate of tracer populations of alloreactive transgenic CD8+ T cells in a normal microenvironment. We observed that DST plus anti-CD154 mAb prolonged allograft survival and deleted alloreactive transgenic CD8+ T cells. Neither component alone did so. Skin allograft survival was also prolonged in normal recipients treated with anti-CD154 mAb plus a depleting anti-CD8 mAb and in C57BL/6-CD8 knockout mice treated with anti-CD154 mAb monotherapy. We conclude that, in the presence of anti-CD154 mAb, DST leads to an allotolerant state, in part by deleting alloreactive CD8+ T cells. Consistent with this conclusion, blockade of CTLA4, which is known to abrogate the effects of DST and anti-CD154 mAb, prevented the deletion of alloreactive transgenic CD8+ T cells. These results document for the first time that peripheral deletion of alloantigen-specific CD8+ T cells is an important mechanism through which allograft survival can be prolonged by costimulatory blockade. We propose a unifying mechanism to explain allograft prolongation by DST and blockade of costimulation.


Nature Materials | 2015

Size- and shape-dependent foreign body immune response to materials implanted in rodents and non-human primates

Omid Veiseh; Joshua C. Doloff; Minglin Ma; Arturo Vegas; Hok Hei Tam; Andrew Bader; Jie Li; Erin Langan; Jeffrey Wyckoff; Whitney S. Loo; Siddharth Jhunjhunwala; Alan Chiu; Sean Siebert; Katherine Tang; Jennifer Hollister-Lock; Stephanie Aresta-Dasilva; Matthew A. Bochenek; Joshua E. Mendoza-Elias; Yong Wang; Merigeng Qi; Danya M. Lavin; Michael Chen; Nimit Dholakia; Raj Thakrar; Igor Lacík; Gordon C. Weir; Jose Oberholzer; Dale L. Greiner; Robert Langer; Daniel G. Anderson

The efficacy of implanted biomedical devices is often compromised by host recognition and subsequent foreign body responses. Here, we demonstrate the role of the geometry of implanted materials on their biocompatibility in vivo. In rodent and non-human primate animal models, implanted spheres 1.5 mm and above in diameter across a broad spectrum of materials, including hydrogels, ceramics, metals, and plastics, significantly abrogated foreign body reactions and fibrosis when compared to smaller spheres. We also show that for encapsulated rat pancreatic islet cells transplanted into streptozotocin-treated diabetic C57BL/6 mice, islets prepared in 1.5 mm alginate capsules were able to restore blood-glucose control for up to 180 days, a period more than 5-fold longer than for transplanted grafts encapsulated within conventionally sized 0.5-mm alginate capsules. Our findings suggest that the in vivo biocompatibility of biomedical devices can be significantly improved by simply tuning their spherical dimensions.

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Aldo A. Rossini

University of Massachusetts Medical School

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Leonard D. Shultz

University of Massachusetts Medical School

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John P. Mordes

University of Massachusetts Medical School

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Michael A. Brehm

University of Massachusetts Medical School

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Rita Bortell

University of Massachusetts Medical School

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Jean Leif

University of Massachusetts Medical School

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Eugene S. Handler

University of Massachusetts Medical School

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Thomas G. Markees

University of Massachusetts Medical School

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Todd Pearson

University of Massachusetts Medical School

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Nancy E. Phillips

University of Massachusetts Medical School

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