Showing posts with label B cells. Show all posts
Showing posts with label B cells. Show all posts

Monday, 3 February 2025

Understanding the Suppression of B-Cell Activation by Human Cord Blood-Derived Stem Cells (CB-SCs) through the Galectin-9-Dependent Mechanism | Chapter 3 | Medical Research and Its Applications Vol. 7

Human cord blood-derived stem cells (CB-SCs) display a unique phenotype, with both embryonic and hematopoietic markers that distinguish them from other known types of stem cells, including hematopoietic stem cells (HSCs) and mesenchymal stem cells (MSCs). It was demonstrated that the direct immune modulation of CB-SCs on the activated B cells via the Gal-9-mediated mechanism leads to the marked suppression of B-cell proliferation and phenotypic changes. The Stem Cell Educator therapy was developed among multiple clinical trials based on the immune modulations of multipotent cord blood-derived stem cells (CB-SCs) on different compartments of immune cells, such as T cells and monocytes/macrophages, in type 1 diabetes and other autoimmune diseases. However, the effects of CB-SCs on the B cells remained unclear. To better understand the molecular mechanisms underlying the immune education of CB-SCs, we explored the modulations of CB-SCs on human B cells. CB-SCs were isolated from human cord blood units and confirmed by flow cytometry with different markers for their purity. B cells were purified by using anti-CD19 immunomagnetic beads from human peripheral blood mononuclear cells (PBMCs). Next, the activated B cells were treated in the presence or absence of coculture with CB-SCs for 7 days before undergoing flow cytometry analysis of phenotypic changes with different markers. Reverse transcription-polymerase chain reaction (RT-PCR) was utilized to evaluate the levels of galectin expressions on CB-SCs with or without treatment of activated B cells in order to find the key galectin that was contributing to the B-cell modulation. Flow cytometry demonstrated that the proliferation of activated B cells was markedly suppressed in the presence of CB-SCs, leading to the downregulation of immunoglobulin production from the activated B cells. Phenotypic analysis revealed that treatment with CB-SCs increased the percentage of IgD+CD27− naïve B cells, but decreased the percentage of IgD−CD27+ switched B cells. The transwell assay showed that the immune suppression of CB-SCs on B cells was dependent on the galectin-9 molecule, as confirmed by the blocking experiment with the anti-galectin-9 monoclonal antibody. Mechanistic studies demonstrated that both calcium levels of cytoplasm and mitochondria were downregulated after the treatment with CB-SCs, causing the decline in mitochondrial membrane potential in the activated B cells. Western blot exhibited that the levels of phosphorylated Akt and Erk1/2 signaling proteins in the activated B cells were also markedly reduced in the presence of CB-SCs. CB-SCs displayed multiple immune modulations on B cells through the galectin-9-mediated mechanism and calcium flux/Akt/Erk1/2 signaling pathways. The data advance our current understanding of the molecular mechanisms underlying Stem Cell Educator therapy to treat autoimmune diseases in clinics.

 

Author (s) Details

Wei Hu
Center for Discovery and Innovation, Hackensack Meridian Health, Nutley, NJ 07110, USA.

Xiang Song
Center for Discovery and Innovation, Hackensack Meridian Health, Nutley, NJ 07110, USA.

Haibo Yu
Center for Discovery and Innovation, Hackensack Meridian Health, Nutley, NJ 07110, USA.

Sophia Fan
Throne Biotechnologies, Paramus, NJ 07652, USA.

Andrew Shi
Throne Biotechnologies, Paramus, NJ 07652, USA.

Jingyu Sun
Department of Chemistry and Chemical Biology, Stevens Institute of Technology, Hoboken, NJ 07030, USA.

Hongjun Wang

Department of Chemistry and Chemical Biology, Stevens Institute of Technology, Hoboken, NJ 07030, USA.

Laura Zhao

Throne Biotechnologies, Paramus, NJ 07652, USA.

Yong Zhao (MD, PhD)
Center for Discovery and Innovation, Hackensack Meridian Health, Nutley, NJ 07110, USA.Throne Biotechnologies, Paramus, NJ 07652, USA.

 

Please see the book here:- https://doi.org/10.9734/bpi/mria/v7/476

Thursday, 12 August 2021

Immunity in Medically Important Parasitic Infections: An Overview | Chapter 9 | Recent Progress in Microbiology and Biotechnology Vol. 7

 The rule is immunity. It's frequently unfinished, takes a long time to develop, and then fades away rapidly. The term "immunity" refers to the ability to resist infection. Human life is a battleground in which we are surrounded on all sides by bacteria, viruses, fungus, and parasites, as if we were troops. Our bodies are equipped with an immune system as a defence mechanism. Infections with parasitic worms, such as intestinal worms, are frequently accompanied by blood eosinophilia, which is caused by an inflammatory mechanism. Intestinal infections with Ancylostoma duodenale, Ascaris lumbricoides, Trichuristrichiura, Wuchereria bancroft, Brugiamalayi, loaloa, Dracunculus medinensis, mite infection of the lungs (including at least some cases of tropical eosinophilia), and hydrated disease caused by Echinococcus granulosus are all common causes of blood eos Eosinophilia infiltrates tissues where an antigen-antibody response has occurred in significant numbers. They appear to be drawn to some antigen-antibody reaction product, as evidenced by the fact that when tissues from sensitised guinea pigs mixed with antigen in vitro, or tissues from guinea pigs who have died from anaphylaxis, are transplanted into the peritoneal cavity of normal guinea pigs, the recipient develops severe eosinophilia within 24 hours. Although the active agent has not been infected, it is unlikely that it is histamine. Rodent eosinophils are particularly active phagocytic, ingesting cellular debris, mast cell granules, and other detritus, but it's unclear whether this is true of eosinophils from other species, or what role eosinophils play in these reactions. In parasite infection, a variety of defence systems are activated. When parasites enter the bloodstream (Malaria, Trypanosoma), a humoral response emerges, but parasites that grow within the tissues elicit cell-mediated immunity (Eg: Cutaneous leishmaniasis). B cells, memory cells, and antibodies all play a role in humoral immunity. IgG and IgM are produced in protozoal infections. In addition, IgA is created during an infection of the intestine. IgG, IgM, and IgE antibodies are generated in response to helminthic infections.


Author (S) Details

M. V. R. Rao
Research Laboratory, Apollo institute of Medical Sciences and Research, India.

M. Khaleel
Department of Microbiology, Owaisi Hospital & Research Canter, Deccan College of Medical Sciences, India.

V. K. Chennamchetty
Department of Pulmonology, Apollo Institute of Medical Sciences and Research, India.

S. Rao
Department of Biotechnology, Acharya Nagarjuna University, India.

A. Khan
American University School of Medicine Aruba, Caribbean Islands, India.

T. Calvo
American University School of Medicine Aruba, Caribbean Islands, India.

A. M. Nisanth
NRI Medical College, Dr. NTR University Health Sciences, India.

R. Kudari
Department of Pharmaceutical Analysis, Hindu College of Pharmacy, India.

Dilip Mathai
Department of Medicine, Dean, Apollo Institute of Medical Sciences and Research, India.

M. K. Verma
American University School of Medicine Aruba, Caribbean Islands, India.

View Book :- https://stm.bookpi.org/RPMB-V7/article/view/2579