1.Adaptive immunity in the neuroinflammation of Alzheimer's disease.
Hanchen LIU ; Yun CHEN ; Jing ZHANG ; Xiaochun CHEN
Chinese Medical Journal 2025;138(17):2116-2129
Alzheimer's disease (AD) is the most common cause of dementia and is a growing public health challenge. Neuroinflammation has been proposed as a prominent pathological feature of AD and has traditionally been attributed to the innate immune system. However, emerging evidence highlights the involvement of adaptive immunity, particularly T and B lymphocytes, in the neuroinflammatory processes of AD. It remains unclear how adaptive immune responses, originally intended to protect the body, contribute to chronic inflammation and neuronal dysfunction in AD. Here, we review the roles of adaptive immunity, cellular composition, and niches and their contribution to AD development and progression. Notably, we synthesize the crosstalk between adaptive immunity and the innate immune system of the central nervous system (CNS), which is mainly mediated by glial cells and myeloid cells, and their interrelationships with amyloid-β (Aβ)/Tau pathology. We hypothesized that the alterations observed in innate immunity in AD mirror age-related immune alterations, whereas the dysregulation of adaptive immunity contributes more accurately to disease-specific immune responses. Targeting adaptive immunity in the context of neuroinflammation may provide new insights into potential therapeutic strategies designed to modulate immune responses, thereby facilitating the diagnosis, intervention, and treatment of AD.
Alzheimer Disease/metabolism*
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Humans
;
Adaptive Immunity/physiology*
;
Immunity, Innate/immunology*
;
Animals
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Neuroinflammatory Diseases/immunology*
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Inflammation/immunology*
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Amyloid beta-Peptides/metabolism*
2.Progress in autophagy effect on the progression of SLE pathogenesis by regulating the immune system.
Tianzhen MA ; Honghui TANG ; Xuan CHEN ; Yuqing GUO ; Liping ZHANG ; Baiqing LI ; Jin XI ; Yuanyuan WANG
Chinese Journal of Cellular and Molecular Immunology 2025;41(7):649-654
Autophagy is a fundamental biological metabolic process involved in immune defense, material metabolism, and homeostasis and closely linked to immune regulation. Systemic lupus erythematosus (SLE) is a widespread connective tissue disorder primarily resulting from immune system imbalance. Due to the immune system's failure to recognize its own substances, it generates autoantibodies that can affect various tissues and organs, leading to diverse clinical manifestations. The pathogenesis and treatment of SLE are currently under extensive investigation. In normal metabolic processes, autophagy engages in both innate and adaptive immunity, regulates the immune response, and is crucial for maintaining normal immune function and the body's internal homeostasis. Research has indicated that SLE patients exhibit immune dysfunction and altered autophagy levels. Modulating autophagy expression can influence immune system functionality and alleviate SLE symptoms. Additionally, autophagy aids in the innate immune response and adaptive immunity by clearing metabolites and regulating the life cycle of immune cells. Studies suggest that drugs targeting autophagy can positively influence the progression of SLE. This article reviews advancements in research regarding the impact of autophagy on the pathogenesis of SLE through the regulation of immune system functions.
Lupus Erythematosus, Systemic/pathology*
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Autophagy/immunology*
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Humans
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Animals
;
Immunity, Innate
;
Adaptive Immunity
;
Disease Progression
;
Immune System/immunology*
3.Research progress on the role of viral infection-regulated mitophagy in the regulation of immune response.
Xiaoying DENG ; Chao FAN ; Ying ZHANG
Chinese Journal of Cellular and Molecular Immunology 2025;41(9):827-831
Mitochondria are one of the oldest and most important endomembrane systems in eukaryotic cells and serve as the hubs of multiple cellular processes. Mitophagy (mitochondrial autophagy), a major way to maintain mitochondrial homeostasis, is closely linked to antiviral immune regulation. Depending on whether ubiquitination is required for the involved receptors or adaptors, mitophagy can be classified into ubiquitin-dependent and ubiquitin-independent types. Viruses can directly or indirectly regulate mitophagy and mitochondrial dynamics through various pathways. Through these processes, they can affect innate and adaptive immunity, so as to achieve immune escape, aggravate cell damage or promote the formation of adaptive immunity. This review summarizes the latest research progress on the role of viral infection-regulated mitophagy in the regulation of immune response.
Mitophagy/immunology*
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Humans
;
Animals
;
Virus Diseases/immunology*
;
Mitochondria/metabolism*
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Immunity, Innate
;
Adaptive Immunity
4.Inhibitory effect of adenosine on adaptive antitumor immunity and intervention strategies.
Longsheng WANG ; Wenxin ZHANG ; Jie ZHANG ; Mingming ZHENG ; Xiaohui PAN ; Hongjie GUO ; Ling DING
Journal of Zhejiang University. Medical sciences 2023;52(5):567-577
Tumors in which the microenvironment is characterized by lack of immune cell infiltration are referred as "cold tumors" and typically exhibit low responsiveness to immune therapy. Targeting the factors contributing to "cold tumors" formation and converting them into "hot tumors" is a novel strategy for improving the efficacy of immunotherapy. Adenosine, a hydrolysis product of ATP, accumulates with a significantly higher concentration in the tumor microenvironments compared with normal tissue and exerts inhibitory effects on tumor-specific adaptive immunity. Tumor cells, dendritic cells, macrophages, and T cells express abundant adenosine receptors on their surfaces. The binding of adenosine to these receptors initiates downstream signaling pathways that suppress tumor antigen presentation and immune cell activation, consequently dampening adaptive immune responses against tumors. Adenosine down-regulates the expression of major histocompatibility complex Ⅱ and co-stimulatory factors on dendritic cells and macrophages, thereby inhibiting antigen presentation to T cells. Adenosine also inhibits ligand-receptor binding and transmembrane signaling on T cells, concomitantly suppressing the secretion of anti-tumor cytokines and impairing T cell activation. Furthermore, adenosine hinders effector T cell trafficking to tumor sites and infiltration by inhibiting chemokine secretion and KCa3.1 channels. Additionally, adenosine promotes the secretion of immunosuppressive cytokines, increases immune checkpoint protein expression, and enhances the activity of immunosuppressive cells, collectively curbing cytotoxic T cell-mediated tumor cell killing. Given the immunosuppressive role of adenosine in adaptive antitumor immunity, several inhibitors targeting adenosine generation or adenosine receptor blockade are currently in preclinical or clinical development with the aim of enhancing the effectiveness of immunotherapies. This review provides an overview of the inhibitory effects of adenosine on adaptive antitumor immunity, elucidate the molecular mechanisms involved, and summarizes the latest advances in application of adenosine inhibition strategies for antitumor immunotherapy.
Humans
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Adenosine/pharmacology*
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T-Lymphocytes
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Adaptive Immunity
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Cytokines
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Neoplasms/therapy*
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Tumor Microenvironment
5.The role of dendritic cells in the immunomodulation to implanted biomaterials.
Siyuan WANG ; Yanqi CHEN ; Zhaoting LING ; Jia LI ; Jun HU ; Fuming HE ; Qianming CHEN
International Journal of Oral Science 2022;14(1):52-52
Considering the substantial role played by dendritic cells (DCs) in the immune system to bridge innate and adaptive immunity, studies on DC-mediated immunity toward biomaterials principally center on their adjuvant effects in facilitating the adaptive immunity of codelivered antigens. However, the effect of the intrinsic properties of biomaterials on dendritic cells has not been clarified. Recently, researchers have begun to investigate and found that biomaterials that are nonadjuvant could also regulate the immune function of DCs and thus affect subsequent tissue regeneration. In the case of proteins adsorbed onto biomaterial surfaces, their intrinsic properties can direct their orientation and conformation, forming "biomaterial-associated molecular patterns (BAMPs)". Thus, in this review, we focused on the intrinsic physiochemical properties of biomaterials in the absence of antigens that affect DC immune function and summarized the underlying signaling pathways. Moreover, we preliminarily clarified the specific composition of BAMPs and the interplay between some key molecules and DCs, such as heat shock proteins (HSPs) and high mobility group box 1 (HMGB1). This review provides a new direction for future biomaterial design, through which modulation of host immune responses is applicable to tissue engineering and immunotherapy.
Biocompatible Materials/metabolism*
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Dendritic Cells/metabolism*
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Tissue Engineering
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Immunomodulation
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Adaptive Immunity
6.Antimicrobial peptides: bridging innate and adaptive immunity in the pathogenesis of psoriasis.
Jing-Yi MA ; Shuai SHAO ; Gang WANG
Chinese Medical Journal 2020;133(24):2966-2975
Antimicrobial peptides (AMPs) are small molecules produced by a myriad of cells and play important roles not only in protecting against infections and sustaining skin barrier homeostasis but also in contributing to immune dysregulation under pathological conditions. Recently, increasing evidence has indicated that AMPs, including cathelicidin (LL-37), human β-defensins, S100 proteins, lipocalin 2, and RNase 7, are highly expressed in psoriatic skin lesions. These peptides broadly regulate immunity by interacting with various immune cells and linking innate and adaptive immune responses during the progression of psoriasis. In this review, we summarize the recent findings regarding AMPs in the pathogenesis of psoriasis with a main focus on their immunomodulatory abilities.
Adaptive Immunity
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Humans
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Immunity, Innate
;
Pore Forming Cytotoxic Proteins
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Psoriasis
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Skin Diseases
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beta-Defensins
7.Durability of neutralizing antibodies and T-cell response post SARS-CoV-2 infection.
Yun TAN ; Feng LIU ; Xiaoguang XU ; Yun LING ; Weijin HUANG ; Zhaoqin ZHU ; Mingquan GUO ; Yixiao LIN ; Ziyu FU ; Dongguo LIANG ; Tengfei ZHANG ; Jian FAN ; Miao XU ; Hongzhou LU ; Saijuan CHEN
Frontiers of Medicine 2020;14(6):746-751
The ongoing pandemic of Coronavirus disease 19 (COVID-19) is caused by a newly discovered β Coronavirus named severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2). How long the adaptive immunity triggered by SARS-CoV-2 can last is of critical clinical relevance in assessing the probability of second infection and efficacy of vaccination. Here we examined, using ELISA, the IgG antibodies in serum specimens collected from 17 COVID-19 patients at 6-7 months after diagnosis and the results were compared to those from cases investigated 2 weeks to 2 months post-infection. All samples were positive for IgGs against the S- and N-proteins of SARS-CoV-2. Notably, 14 samples available at 6-7 months post-infection all showed significant neutralizing activities in a pseudovirus assay, with no difference in blocking the cell-entry of the 614D and 614G variants of SARS-CoV-2. Furthermore, in 10 blood samples from cases at 6-7 months post-infection used for memory T-cell tests, we found that interferon γ-producing CD4
Adaptive Immunity/physiology*
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Adult
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Aged
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Antibodies, Neutralizing/blood*
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COVID-19/immunology*
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Cohort Studies
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Female
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Humans
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Immunoglobulin G/blood*
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Male
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Middle Aged
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SARS-CoV-2/immunology*
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T-Lymphocytes/physiology*
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Time Factors
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Viral Proteins/immunology*
8.Critical Points on the Use of Biologicals in Allergic Diseases and Asthma
Ioana AGACHE ; Catalina COJANU ; Alexandru LACULICEANU ; Liliana ROGOZEA
Allergy, Asthma & Immunology Research 2020;12(1):24-41
Improved understanding of the contribution of immune-inflammatory mechanisms in allergic diseases and asthma has encouraged development of biologicals and small molecules specifically targeting the innate and adaptive immune response. There are several critical points impacting the efficacy of this stratified approach, from the complexity of disease endotypes to the effectiveness in real-world settings. We discuss here how these barriers can be overcome to facilitate the development of implementation science for allergic diseases and asthma.
Adaptive Immunity
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Asthma
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Biological Products
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Hypersensitivity
9.Innate Lymphoid Cells in the Airways: Their Functions and Regulators
Keisuke ORIMO ; Hirohisa SAITO ; Kenji MATSUMOTO ; Hideaki MORITA
Allergy, Asthma & Immunology Research 2020;12(3):381-398
Since the airways are constantly exposed to various pathogens and foreign antigens, various kinds of cells in the airways—including structural cells and immune cells—interact to form a precise defense system against pathogens and antigens that involve both innate immunity and acquired immunity. Accumulating evidence suggests that innate lymphoid cells (ILCs) play critical roles in the maintenance of tissue homeostasis, defense against pathogens and the pathogenesis of inflammatory diseases, especially at body surface mucosal sites such as the airways. ILCs are activated mainly by cytokines, lipid mediators and neuropeptides that are produced by surrounding cells, and they produce large amounts of cytokines that result in inflammation. In addition, ILCs can change their phenotype in response to stimuli from surrounding cells, which enables them to respond promptly to microenvironmental changes. ILCs exhibit substantial heterogeneity, with different phenotypes and functions depending on the organ and type of inflammation, presumably because of differences in microenvironments. Thus, ILCs may be a sensitive detector of microenvironmental changes, and analysis of their phenotype and function at local sites may enable us to better understand the microenvironment in airway diseases. In this review, we aimed to identify molecules that either positively or negatively influence the function and/or plasticity of ILCs and the sources of the molecules in the airways in order to examine the pathophysiology of airway inflammatory diseases and facilitate the issues to be solved.
Adaptive Immunity
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Cellular Microenvironment
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Cytokines
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Homeostasis
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Immunity, Innate
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Inflammation
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Lymphocytes
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Neuropeptides
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Phenotype
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Plastics
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Population Characteristics
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Respiratory Tract Diseases
10.The Interplay between Host Immunity and Respiratory Viral Infection in Asthma Exacerbation
Ferdaus Mohd Altaf HOSSAIN ; Jin Young CHOI ; Erdenebileg UYANGAA ; Seong Ok PARK ; Seong Kug EO
Immune Network 2019;19(5):e31-
Asthma is one of the most common and chronic diseases characterized by multidimensional immune responses along with poor prognosis and severity. The heterogeneous nature of asthma may be attributed to a complex interplay between risk factors (either intrinsic or extrinsic) and specific pathogens such as respiratory viruses, and even bacteria. The intrinsic risk factors are highly correlated with asthma exacerbation in host, which may be mediated via genetic polymorphisms, enhanced airway epithelial lysis, apoptosis, and exaggerated viral replication in infected cells, resulting in reduced innate immune response and concomitant reduction of interferon (types I, II, and III) synthesis. The canonical features of allergic asthma include strong Th2-related inflammation, sensitivity to non-steroidal anti-inflammatory drugs (NSAIDs), eosinophilia, enhanced levels of Th2 cytokines, goblet cell hyperplasia, airway hyper-responsiveness, and airway remodeling. However, the NSAID-resistant non-Th2 asthma shows a characteristic neutrophilic influx, Th1/Th17 or even mixed (Th17-Th2) immune response and concurrent cytokine streams. Moreover, inhaled corticosteroid-resistant asthma may be associated with multifactorial innate and adaptive responses. In this review, we will discuss the findings of various in vivo and ex vivo models to establish the critical heterogenic asthmatic etiologies, host-pathogen relationships, humoral and cell-mediated immune responses, and subsequent mechanisms underlying asthma exacerbation triggered by respiratory viral infections.
Adaptive Immunity
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Airway Remodeling
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Apoptosis
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Asthma
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Bacteria
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Chronic Disease
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Cytokines
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Eosinophilia
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Goblet Cells
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Hyperplasia
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Immunity, Innate
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Inflammation
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Interferons
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Neutrophils
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Polymorphism, Genetic
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Prognosis
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Respiratory Hypersensitivity
;
Respiratory Tract Infections
;
Risk Factors
;
Rivers

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