Tight junction proteins expression and modulation in immune cells and multiple sclerosis
JOURNAL OF CELLULAR AND MOLECULAR MEDICINE
Authors: Mandel, Ilana; Paperna, Tamar; Glass-Marmor, Lea; Volkowich, Anat; Badarny, Samih; Schwartz, Ilya; Vardi, Pnina; Koren, Ilana; Miller, Ariel
Abstract
The tight junction proteins (TJPs) are major determinants of endothelial cells comprising physiological vascular barriers such as the bloodbrain barrier, but little is known about their expression and role in immune cells. In this study we assessed TJP expression in human leukocyte subsets, their induction by immune activation and modulation associated with autoimmune disease states and therapies. A consistent expression of TJP complexes was detected in peripheral blood leukocytes (PBLs), predominantly in B and T lymphocytes and monocytes, whereas the in vitro application of various immune cell activators led to an increase of claudin 1 levels, yet not of claudin 5. Claudins 1 and 5 levels were elevated in PBLs of multiple sclerosis (MS) patients in relapse, relative to patients in remission, healthy controls and patients with other neurological disorders. Interestingly, claudin 1 protein levels were elevated also in PBLs of patients with type 1 diabetes (T1D). Following glucocorticoid treatment of MS patients in relapse, RNA levels of JAM3 and CLDN5 and claudin 5 protein levels in PBLs decreased. Furthermore, a correlation between CLDN5 pre-treatment levels and clinical response phenotype to interferon-beta therapy was detected. Our findings indicate that higher levels of leukocyte claudins are associated with immune activation and specifically, increased levels of claudin 5 are associated with MS disease activity. This study highlights a potential role of leukocyte TJPs in physiological states, and autoimmunity and suggests they should be further evaluated as biomarkers for aberrant immune activity and response to therapy in immune-mediated diseases such as MS.
Genetic, structural, and chemical insights into the dual function of GRASP55 in germ cell Golgi remodeling and JAM-C polarized localization during spermatogenesis
PLOS GENETICS
Authors: Cartier-Michaud, Amandine; Bailly, Anne-Laure; Betzi, Stephane; Shi, Xiaoli; Lissitzky, Jean-Claude; Zarubica, Ana; Serge, Arnauld; Roche, Philippe; Lugari, Adrien; Hamon, Veronique; Bardin, Florence; Derviaux, Carine; Lembo, Frederique; Audebert, Stephane; Marchetto, Sylvie; Durand, Benedicte; Borg, Jean-Paul; Shi, Ning; Morelli, Xavier; Aurrand-Lions, Michel
Abstract
Spermatogenesis is a dynamic process that is regulated by adhesive interactions between germ and Sertoli cells. Germ cells express the Junctional Adhesion Molecule-C ( JAM-C, encoded by Jam3), which localizes to germ/Sertoli cell contacts. JAM-C is involved in germ cell polarity and acrosome formation. Using a proteomic approach, we demonstrated that JAM-C interacted with the Golgi reassembly stacking protein of 55 kDa ( GRASP55, encoded by Gorasp2) in developing germ cells. Generation and study of Gorasp2(-/-) mice revealed that knock-out mice suffered from spermatogenesis defects. Acrosome formation and polarized localization of JAM-C in spermatids were altered in Gorasp2(-/-) mice. In addition, Golgi morphology of spermatocytes was disturbed in Gorasp2(-/-) mice. Crystal structures of GRASP55 in complex with JAM-C or JAM-B revealed that GRASP55 interacted via PDZ-mediated interactions with JAMs and induced a conformational change in GRASP55 with respect of its free conformation. An in silico pharmacophore approach identified a chemical compound called Graspin that inhibited PDZ-mediated interactions of GRASP55 with JAMs. Treatment of mice with Graspin hampered the polarized localization of JAM-C in spermatids, induced the premature release of spermatids and affected the Golgi morphology of meiotic spermatocytes.