Transcriptomic correlates of organ failure extent in sepsis
JOURNAL OF INFECTION
Authors: Almansa, Raquel; Heredia-Rodriguez, Maria; Gomez-Sanchez, Esther; Andaluz-Ojeda, David; Iglesias, Veronica; Rico, Lucia; Ortega, Alicia; Gomez-Pesquera, Estefania; Liu, Pilar; Aragon, Marta; Maria Eiros, Jose; Angeles Jimenez-Sousa, Maria; Resino, Salvador; Gomez-Herreras, Ignacio; Bermejo-Martin, Jesus F.; Tamayo, Eduardo
Abstract
Objectives: Sepsis is characterised by the frequent presence of organ failure and marked immunologic alterations. We studied the association between the extent of organ failure and the transcriptomic response of septic patients. Methods: Gene expression profiles in the blood of 74 surgical patients with sepsis were compared with those of 30 surgical patients with no sepsis. Differentially expressed genes were assessed for their correlation with the sequential organ failure (SOFA) score. Results: The expression levels of a group of genes participating in the cell cycle (HIST1H1C, CKS2, CCNA2, CDK1, CCNB2, CIT, CCNB1, AURKA, RAD51), neutrophil protease activity (ELANE, ADORA3, MPO, MMP8, CTSG), IL-1R and IL-18R response correlated directly with SOFA and mortality. Genes involved in T cell (LCK, CD3G, CD3D, ZAP70, ICOS, CD3E, CD28, IL2RB, CD8B, CD8A, CD40LG, IL23A, CCL5, SH2D1A, ITK, CD247, TBX21, GATA3, CCR7, LEF1, STAT4) and NK cell immunity (CD244, KLRK1, KLRD1) were inversely associated with SOFA and mortality. Conclusions: The extent of organ failure in sepsis correlates directly with the existence of imbalanced innate and adaptive responses at the transcriptomic level. Quantification of the expression levels of the genes identified here could contribute to the simultaneous assessment of disease severity and immunological alterations in sepsis. (C) 2014 The British Infection Association. Published by Elsevier Ltd. All rights reserved.
Entire CD3 epsilon, delta, and gamma humanized mouse to evaluate human CD3-mediated therapeutics
SCIENTIFIC REPORTS
Authors: Ueda, Otoya; Wada, Naoko A.; Kinoshita, Yasuko; Hino, Hiroshi; Kakefuda, Mami; Ito, Tsuneo; Fujii, Etsuko; Noguchi, Mizuho; Sato, Kiyoharu; Morita, Masahiro; Tateishi, Hiromi; Matsumoto, Kaoru; Goto, Chisato; Kawase, Yosuke; Kato, Atsuhiko; Hattori, Kunihiro; Nezu, Junichi; Ishiguro, Takahiro; Jishage, Kou-ichi
Abstract
T cell-mediated immunotherapy is an attractive strategy for treatment in various disease areas. In this therapeutic approach, the CD3 complex is one of the key molecules to modulate T cell functions; however, in many cases, we cannot evaluate the drug candidates in animal experiments because the therapeutics, usually monoclonal antibodies specific to human CD3, cannot react to mouse endogenous Cd3. Although immunodeficient mice transfused with human hematopoietic stem or precursor cells, known as humanized mice, are available for these studies, mice humanized in this manner are not completely immune competent. In this study we have succeeded in establishing a novel mouse strain in which all the three components of the Cd3 complex - Cd3 epsilon, Cd3 delta, and Cd3 gamma - are replaced by their human counterparts, CD3E, CD3D, and CD3G. Basic immunological assessments have confirmed that this strain of human CD3 EDG-replaced mice are entirely immune competent, and we have also demonstrated that a bispecific antibody that simultaneously binds to human CD3 and a tumor-associated antigen (e.g. ERBB2 or GPC3) can be evaluated in human CD3 EDG-replaced mice engrafted with tumors. Our mouse model provides a novel means to evaluate the in vivo efficacy of human CD3-mediated therapy.