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Circadian clock regulates immune checkpoint inhibitor efficacy
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Yining Niua, b, Motao Zhua, b, *
Acta Pharmaceutica Sinica B | 2025, 15(2) : 1183 - 1185
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Acta Pharmaceutica Sinica B | 2025, 15(2): 1183-1185
HIGHLIGHT
Circadian clock regulates immune checkpoint inhibitor efficacy
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Yining Niua, b, Motao Zhua, b, *
Affiliations
  • aCAS Key Laboratory for Biomedical Effects of Nanomaterials & Nanosafety, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology of China, Beijing 100190, China
  • bUniversity of Chinese Academy of Sciences, Beijing 100049, China
About Author:

E-mail address: (M. Zhu)

Author contributions

Yining Niu: Writing-review & editing, Writing-original draft, Conceptualization. Motao Zhu: Writing-review & editing, Funding acquisition, Conceptualization. All of the authors have read and approved the final manuscript.

doi: 10.1016/j.apsb.2025.01.011
Outline
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Clock disruption  /  Circadian rhythm  /  Anti-programmed death ligand 1  /  Myeloid-derived suppressor cells  /  Immunotherapy  /  Immune checkpoint inhibitors  /  Bmal1  /  Cancer treatment
Yining Niu, Motao Zhu. Circadian clock regulates immune checkpoint inhibitor efficacy[J]. Acta Pharmaceutica Sinica B, 2025 , 15 (2) : 1183 -1185 . DOI: 10.1016/j.apsb.2025.01.011
Immunotherapy remains one of the most promising strategies for cancer treatment, with ICIs at the forefront of this innovation1. However, patient response to ICIs is highly variable, highlighting the urgent need to enhance their efficacy in clinical settings2. Addressing this challenge is critical for advancing the impact of immunotherapy in oncology.
Sleep, as a fundamental biological process, plays a crucial role in maintaining various physiological functions, including the regulation of circadian rhythms. The circadian clock plays a crucial role in regulating immune responses, influencing both host defence mechanisms and tumour immune surveillance3,4. A seminal study by Toda et al. identified nemuri, a sleep-related gene in Drosophila, establishing a critical link between sleep and immune function5. Subsequent research exploring the molecular mechanisms underlying circadian-immune interactions revealed a direct association between circadian clock disruptions and immune dysfunction in humans. Core circadian genes, such as Clock, Bmal1, Per, and Cry, are integral to the regulation of sleep patterns, duration, and quality. Dysregulation of these genes has been demonstrated to significantly impair immune responses4. The intricate relationship between the intestine, sleep, and the nervous system is multifaceted. Disruptions to systemic circadian rhythms, such as irregular light-dark cycles, have also been implicated in disturbances within the gut-brain axis, thereby compromising immune responses6. Studies have also indicated that the gut microbiota interacted with sleep through the “gut-brain axis”. Furthermore, the nervous system, particularly the ENS-often referred to as the “second brain”- is vital in regulating intestinal motility, secretion, and immune responses7. Overall, circadian rhythm disruptions, whether induced by Bmal1 knockout or sleep deprivation, can negatively affect gut health by impairing the function of the ENS and altering the composition of gut microbiota. These changes, in turn, can affect sleep and nervous system function, compromising neuro-immune interactions, and increasing susceptibility to inflammation and immune-related disorders. While previous studies have established a causal relationship between the biological clock and immunity8,9, the precise mechanisms through which circadian rhythms modulate anti-tumour immune responses remain to be fully elucidated.
A recent study published in Nature Immunology has shed new light on this connection by uncovering a mechanism through which circadian rhythms regulate tumour immunosuppression via the modulation of MDSCs, thereby affecting the efficacy of ICIs10. Fortin et al.10 employed two distinct mouse models: a genetically engineered mouse model of CRC with either intact or disrupted biological clocks in intestinal epithelial cells, and a shift disruption mouse model with systemic clock disorders-to investigate how circadian rhythms interact with the tumour immune microenvironment.
By leveraging scRNA-seq analysis to profile the immune landscape in tumour tissues, the researchers observed an increased abundance of neutrophils and a decrease in cytotoxic CD8+ T cells in clock-disrupted mice compared to their WT counterparts. These findings were further validated by flow cytometry, showing consistent changes in the immune microenvironment following clock disruption. Notably, the total frequency of intestinal CD45+ immune cells remained unchanged, suggesting that clock disruption specifically impacts immune cell composition and function within the tumour microenvironment. To further characterize the role of the circadian clock in immune modulation, neutrophil- and monocyte-derived MDSCs were sorted using flow cytometry. Both clock disruption and tumours cause immune infiltration of MDSCs. These MDSCs exhibited elevated levels of reactive oxygen species, increased expression of the immune checkpoint molecule PD-L1, and upregulated immunosuppressive genes such as S100a8, S100a9, and Wfdc17, all of which suggest their heightened ability to suppress anti-tumour T cell responses (Fig. 1A). Notably, PD-L1-expressing MDSCs also contribute to immune regulation in various diseases beyond cancer, including Alzheimer's disease, Parkinson's disease, amyotrophic lateral sclerosis, and multiple sclerosis1113. In Alzheimer's disease and Parkinson's disease condition, PD-L1-expressing MDSCs suppress T cell activation through the PD-1/PD-L1 pathway and induce the differentiation and the expansion of regulatory T cells with the presence of TGF-β and IL-10. However, in the later stages, the proliferation of MDSCs, especially the increase in monocytic MDSCs, may lead to the exacerbation of inflammation. These studies suggest that PD-L1-expressing MDSCs play a significant role in a variety of diseases and may represent potential targets for future therapeutic strategies.
At the molecular level, Fortin et al.10 identified a signalling axis between the intestinal epithelial clock and immune cells. The researchers used WT and intestine-specific Bmal1 knockout (Bmal1fl/fl; Villin-Cre) intestinal monolayers and organoids treated with Wnt3a and observed a Wnt-dependent transcriptional response. The Wnt target genes c-Myc, Survivin, and inflammatory cytokine Cxcl5 were significantly upregulated in a Wnt3a-dependent manner in Bmal1fl/fl; Villin-Cre mice. This finding suggests that disruption of the circadian clock in intestinal epithelial cells promotes a pro-inflammatory response and hyperactivation of the Wnt signalling pathway. This hyperactivation drives the production of inflammatory mediators such as CXCL5, C-X-C motif chemokine ligand 6, and C-X-C motif chemokine ligand 2, which not only recruit neutrophils but also induce an immunosuppressive phenotype. The Wnt-dependent upregulation of MDSC-signature genes, including S100a8, S100a9, Wfdc17, and arginase 2, further supports this phenotype. Furthermore, transwell assays confirmed that neutrophil migration was significantly enhanced under conditions of clock disruption, especially in combination with Wnt pathway activation.
In addition to their findings in mouse models, Fortin et al.10 extended their research to human CRC samples using scRNA-seq data and observed a higher abundance of PD-L1-expressing myeloid cells in CRC tumours compared to normal colon tissue, further highlighting the clinical relevance of their discoveries. This finding raises a critical question: can circadian clock regulation affect the efficacy of anti-PD-L1 therapy in practice? To explore this, Fortin et al.10 used flow cytometry to assess the proportion of Gr1+ and PD-L1+ cells in the intestine and peripheral tissues of mice during both their early rest and active phases. Their findings revealed that the abundance of PD-L1-expressing MDSC follows a circadian rhythm, peaking during the early active phase. Strikingly, when anti-PD-L1 therapy was administered during this phase-when immunosuppressive MDSCs and PD-L1 expression were at their highest-the therapeutic efficacy improved significantly (Fig. 1B). This effect was observed not only in CRC models but also in subcutaneous models of CRC (MC38), lung cancer (CMT167), and melanoma (D4M-S).
Overall, this study emphasizes the intrinsic link between intestinal epithelial and immune cells. It underscores a previously unrecognized mechanism in which MDSCs are co-regulated by the circadian clock and Wnt signalling in the intestine. While previous studies have shown that clock disruption can enhance the recruitment of macrophages and regulatory T cells, this study expands the scope to include clock-dependent regulation of immunosuppression via MDSCs. By leveraging circadian control over immunosuppression, this work sets the stage for future clinical studies aimed at optimizing the timing for ICI delivery to maximize therapeutic benefits.
1.
Chen YN, Zhou QQ, Jia ZF, Cheng N, Zhang S, Chen WD, et al. Enhancing cancer immunotherapy: nanotechnology-mediated immunotherapy overcoming immunosuppression. Acta Pharm Sin B 2024;14:3834—54.
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Wang C, Zeng Q, Gül ZM, Wang SS, Pick R, Cheng P, et al. Circadian tumor infiltration and function of CD8+ T cells dictate immunotherapy efficacy. Cell 2024;187:2690—702.
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Wang C, Lutes LK, Barnoud C, Scheiermann C. The circadian immune system. Sci Immunol 2022;7:eabm2465.
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Ruan W, Yuan XY, Eltzschig HK. Circadian rhythm as a therapeutic target. Nat Rev Drug Discov 2021;20:287—307.
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Toda H, Williams JA, Gulledge M, Sehgal A. A sleep-inducing gene, nemuri, links sleep and immune function in Drosophila. Science 2019;363:509—15.
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Thaiss CA, Zeevi D, Levy M, Zilberman-Schapira G, Suez J, Tengeler AC, et al. Transkingdom control of microbiota diurnal oscillations promotes metabolic homeostasis. Cell 2014;159:514—29.
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Fowler S, Hoedt EC, Talley NJ, Keely S, Burns GL. Circadian rhythms and melatonin metabolism in patients with disorders of gut-brain interactions. Front Neurosci 2022;16:825246.
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Sutton CE, Finlay CM, Raverdeau M, Early JO, DeCourcey J, Zaslona Z, et al. Loss of the molecular clock in myeloid cells exacerbates T cell-mediated CNS autoimmune disease. Nat Commun 2017;8:1923.
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Nguyen KD, Fentress SJ, Qiu YF, Yun K, Cox JS, Chawla A. Circadian gene Bmal1 regulates diurnal oscillations of Ly6Chi inflammatory monocytes. Science 2013;341:1483—8.
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Fortin BM, Pfeiffer SM, Insua-Rodríguez J, Alshetaiwi H, Moshensky A, Song WA, et al. Circadian control of tumor immunosuppression affects efficacy of immune checkpoint blockade. Nat Immunol 2024;25:1257—69.
11.
Thome AD, Faridar A, Beers DR, Thonhoff JR, Zhao WH, Wen SX, et al. Functional alterations of myeloid cells during the course of Alzheimer’s disease. Mol Neurodegeneration 2018;13:61.
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Knier B, Hiltensperger M, Sie C, Aly L, Lepennetier G, Engleitner T, et al. Myeloid-derived suppressor cells control B cell accumulation in the central nervous system during autoimmunity. Nat Immunol 2018;19:1341—51.
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Tamberi L, Belloni A, Pugnaloni A, Rippo MR, Olivieri F, Procopio AD, et al. The influence of myeloid-derived suppressor cell expansion in neuroinflammation and neurodegenerative diseases. Cells 2024;13:643.
Year 2025 volume 15 Issue 2
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doi: 10.1016/j.apsb.2025.01.011
  • Receive Date:2024-09-28
  • Online Date:2026-09-17
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  • Received:2024-09-28
  • Revised:2024-10-28
  • Accepted:2024-11-10
Affiliations
    aCAS Key Laboratory for Biomedical Effects of Nanomaterials & Nanosafety, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology of China, Beijing 100190, China
    bUniversity of Chinese Academy of Sciences, Beijing 100049, China

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表12种不同金属材料的力学参数

Family
属数
Number of
genus
种数
Number of
species
占总种数比例
Percentage of
total species (%)

Genus
种数
Number of
species
占总种数比例
Percentage of total
species (%)
鹅膏菌科Amanitaceae 2 11 5.26 鹅膏菌属 Amanita 10 4.78
小菇科 Mycenaceae 2 12 5.74 丝盖伞属 Inocybe 5 2.39
多孔菌科 Polyporaceae 8 14 6.70 蜡蘑属 Laccaria 5 2.39
红菇科 Russulaceae 3 23 11.00 小皮伞属 Marasmius 6 2.87
小菇属 Mycena 11 5.26
光柄菇属 Pluteus 5 2.39
红菇属 Russula 17 8.13
栓菌属 Trametes 5 2.39
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