Adrenergic signaling through β2-adrenergic receptor (ADRB2) is a conserved neuro-immune axis that modulates tumor biology at multiple levels: tumor cells, stromal compartments (CAF, endothelium), myeloid populations (MDSC/TAM), and lymphocytes (CD4+/CD8+). Activation of ADRB2 by stress-related catecholamines (norepinephrine/epinephrine) promotes angiogenesis, pro-metastatic programs and immunosuppression; conversely, ADRB2 blockade in preclinical models reprograms myeloid cells, potentiates T cell-mediated antitumor immunity and synergizes with immune checkpoint blockade in defined contexts. Clinical and epidemiologic data remained heterogeneous, but other small randomized and retrospective studies suggested that short-term pharmacologic suppression of adrenergic signaling (often combined with COX-2 inhibition) can favorably affect biomarkers and, in pilot trials, disease-free survival. This review summarized cell type-specific mechanisms linking ADRB2 to tumor ecosystem remodeling, compared pharmacological strategies for selective and cell-directed ADRB2 modulation, and outlined translational priorities and trial designs to move ADRB2-targeted approaches into practice.
Parasite-derived molecules have emerged as a promising source of natural bioactive compounds with immunomodulatory and antitumor properties, attracting increasing attention in cancer research. Derived from both protozoan and helminth parasites, these molecules exhibit diverse biological activities that extend beyond parasite survival and represent a novel resource for cancer therapy. Accumulating evidence demonstrates that parasite-derived molecules suppress tumor progression through complementary immune-mediated and non-immune mechanisms, including activation of innate and adaptive antitumor immunity, remodeling of the tumor microenvironment, induction of apoptosis and autophagy, inhibition of angiogenesis and metastasis, and regulation of tumor metabolism. Recent preclinical studies have demonstrated encouraging therapeutic efficacy across multiple tumor models, including melanoma, lung cancer, colorectal cancer, breast cancer, hepatocellular carcinoma, and other malignancies. In addition to summarizing the major classes of parasite-derived molecules and their mechanisms of action, this review highlights recent advances in translational research, including combination therapeutic strategies, immunogenicity and safety, delivery system optimization, and manufacturing and regulatory considerations. Despite encouraging preclinical findings, substantial challenges remain before clinical translation can be achieved. By integrating current mechanistic evidence with emerging translational perspectives, this review provides a comprehensive overview of parasite-derived molecules as potential anticancer agents and offers insights to facilitate their future development and clinical application in cancer therapy.
The etiology of autism currently includes prenatal exposure factors and genetic variants, but it remains unclear how these factors converge on a common pathway. Through multiple autism transcriptome analyses of public data, we discovered that the disruption of Gadd45a may explain the pathogenesis of various types of autism, including the most established valproic acid (VPA) prenatal exposure and MECP2 gene-related autism. Subsequently, we generated Gadd45a knockout mice and found that these mice exhibit significant deficits in social ability, as well as autistic-like phenotypes such as increased digging behaviors. We demonstrated the preferential expression of Gadd45a in cortical excitatory neurons. Through in vivo electrophysiological recordings, we found that the firing frequency of excitatory neurons in the medial prefrontal cortex of knockout mice is abnormal in both resting and task states, which may explain the autistic-like phenotypes exhibited by these mice. Remarkably, we revealed that abnormal neuron firing may be due to the failure of TET1, a GADD45A-interacting protein, to be recruited to the promoter region of Kcnq5, thereby preventing normal DNA demethylation and transcription initiation in the absence of GADD45A. We also demonstrated that GADD45A can recognize R-loop structure to recruit TET1 to the CpG islands of KCNQ5 and regulate the transcription level of KCNQ5. This process also involved nearby antisense lncRNA in the formation of R-loops. Our study revealed a hub gene, GADD45A, and its epigenetic regulation of ion channels (GADD45A/TET1-KCNQ5 axis), which plays a critical role in the pathogenesis of autism.
Neoadjuvant immunochemotherapy (nICT) has emerged as a promising neoadjuvant strategy for esophageal squamous cell carcinoma (ESCC). Identification of the factors affecting the responsiveness to nICT could help further improve treatment efficacy. Here, we performed single-cell analysis on 14 ESCC patients undergoing nICT and revealed tumor microenvironment (TME) features associated with differential treatment responses. Nonnegative matrix factorization (NMF) identified five coordinated cellular programs with distinct response associations. Specifically, the NMF3 program mainly comprising immunosuppressive cell subsets was enriched in the minimal or no pathological tumor regression (TRS3) group, in which regulatory T cells (Tregs) and dendritic cells (DCs) exhibited close correlation. In addition, elevated expression of mitochondrial transcription factor A (TFAM) in DCs was associated with increased Treg infiltration in the TRS3 group. A myeloid-specific Tfam knockout mouse model showed that TFAM deficiency reversed the immunosuppressive TME, inhibited tumor growth, and enhanced response to anti-PD-1 therapy in ESCC. Mechanistically, TFAM deficiency in DCs activated the STING-TBK1-IRF3 pathway, thereby promoting DC maturation to enhance anti-tumor immunity. Overall, this study characterized the TME in residual ESCC after nICT and revealed an association between elevated TFAM expression in DCs and poor responsiveness to nICT. These findings indicate the critical role of TFAM deficiency in DCs in activating anti-tumor immunity, highlighting the potential of targeting TFAM to improve the efficacy of immunotherapy and optimize therapeutic strategies.
AIMS:To evaluate the efficacy and safety of neoadjuvant concurrent chemoradiotherapy (CCRT) utilizing nedaplatin and paclitaxel in patients with locally advanced esophageal squamous cell carcinoma (ESCC). PATIENTS & METHODS:Locally advanced ESCC patients received two cycles of nedaplatin plus paclitaxel or albumin-bound paclitaxel with concurrent radiotherapy (41.4-50.4 Gy) as neoadjuvant treatment. Immunohistochemical profiling was performed on biopsies and surgical specimens. The primary endpoint was the pathological complete response (pCR) rate. RESULTS:Among 49 enrolled patients, 33 underwent surgery, yielding a pCR rate of 30.3%. Overall survival was inferior in resected patients with positive postoperative lymph nodes (HR 3.92, 95% CI 1.30-11.80, p = 0.02, log-rank p = 0.009). Higher FOXP3 expression before (HR 0.14, 95% CI 0.02-1.26, p = 0.08, log-rank p = 0.041) and after (HR 0.23, 95% CI 0.07-0.84, p = 0.03, log-rank p = 0.015) treatment nominally contributed to favorable outcomes. Upregulated TIGIT post-treatment trended toward a poorer prognosis in this surgical cohort (HR 7.10, 95% CI 0.79-63.65, p = 0.08, log-rank p = 0.041). CONCLUSION:Neoadjuvant nedaplatin and paclitaxel-based CCRT demonstrates encouraging preliminary antitumor efficacy. Tumor microenvironment profiling highlights FOXP3 and TIGIT dynamics as potential prognostic indicators. These hypothesis-generating insights warrant further validation in large-scale, randomized controlled trials. Clinical trial registration: Chinese Clinical Trial Registry (http://www.chictr.org.cn), identifier is ChiCTR1900024628. Date of registration: 19 July 2019.
Neoadjuvant immunochemotherapy (NICT), mainly anti-PD-1/PD-L1 therapy combined with cytotoxic chemotherapy, significantly improved perioperative outcomes for resectable solid tumors such as lung cancer and breast cancer. But a large number of patients still had residual lesions and eventually relapsed. Residual tumor cells are not simply unremoved cellular debris, but represent a therapy-selected and therapy-amplified subset of a pre-existing heterogeneous and plastic tumor ecosystem. To avoid implying that therapy generates a new form of tumor plasticity de novo, we use the term “plasticity of non-apoptotic residual tumor cells” to describe the plastic behavior of viable malignant cells that survive treatment-induced cytotoxicity rather than entering apoptosis. In this review, we define the plasticity of non-apoptotic residual tumor cells as the capacity of residual malignant cells to preserve, switch, or re-enter phenotypic states such as dormancy, hybrid EMT, stem-like regeneration, and immune evasion under the combined influence of intrinsic tumor heterogeneity, systemic therapy pressure, and microenvironmental protection. Before the NICT-specific discussion, we outline general theoretical frameworks including therapeutic stress response, apoptosis-induced regeneration, genetic and non-genetic heterogeneity, as well as spatial heterogeneity of involved lymph nodes, so as to provide a more robust interpretation of residual lesion biology under NICT. Also, this review proposes that residual disease may be reconceptualized as a treatment-shaped plastic niche, whose biological behavior is jointly shaped by clonal selection, reversible phenotypic transformation, and microenvironmental ecological protection. We summarize several key states of residual tumor cells: persistent-like/resting state, hybrid EMT/invasive plasticity state, stem-like/regenerative state, and immune escape state, and elucidate the underlying epigenetic basis, including DNA methylation, histone modification, chromatin remodeling, and non-coding RNA network reprogramming. Meanwhile, niche factors such as immune stress, CAF/TAM enrichment, fibrotic matrix, hypoxia, and metabolic stress can further stabilize these states and promote the survival of relapse seeds. Based on this, we propose that future postoperative assessments should be upgraded from residual volume to a stratified residual state, and dynamically identified by combining single-cell omics, spatial pathology, and ctDNA/MRD monitoring. Furthermore, treatment strategies should shift from simply shrinking tumors to plasticity-locking therapy, that is, identifying, classifying, and blocking the plasticity escape pathways of residual lesions before they evolve into recurrence.
γδ T cell acute lymphoblastic leukemia (γδ T-ALL) represents a rare subset of T-ALL and is correlated with high rates of induction failure, relapse, and increased mortality. γδ T-ALL lacks a biologically informed framework for guiding its classification and treatment strategies. In this report, we detail a case of child with γδ T-ALL who underwent induction chemotherapy and intensification treatment, followed by haploidentical hematopoietic stem cell transplantation. The patient achieved a clinical complete remission and remains minimal residual disease negative with chidamide maintenance post-transplantation. Single-cell RNA sequencing revealed a connection between histone HIST1 genes and γδ T-ALL and identified potential effector functions of γδ T cells in combating this leukemia. This case carries significant implications for managing γδ T-ALL, highlighting the relationship between histone modification patterns and γδ tumor-infiltrating lymphocytes in γδ T-ALL cells for developing novel therapeutic approaches.
This study aimed to identify risk factors associated with early postoperative relapse and evaluate their impact on survival outcomes after neoadjuvant therapy for locally advanced esophageal squamous cell carcinoma (LA-ESCC), thereby informing strategies to optimize postoperative clinical management. Patients with LA-ESCC who underwent neoadjuvant therapy followed by surgical resection at West China Hospital between January 2018 and December 2023 were screened and enrolled. Patients were categorized into early relapse (≤ 6 months) and late relapse (> 6 months) groups based on the interval from surgery to relapse. A total of 183 LA-ESCC patients who received neoadjuvant therapy followed by surgical resection were included, with 79 experiencing early relapse and 104 experiencing late relapse. Logistic regression analysis showed that postoperative TNM stage III-IV, ypN + stage, R1 resection, lymphovascular invasion (LVI), perineural invasion (PI), and absence of postoperative adjuvant therapy were risk factors for early relapse (p < 0.05). Multivariate regression further identified R1 resection as an independent predictor (p < 0.05). Cox regression analysis demonstrated that LI was a prognostic factor for overall survival (OS) in patients with early relapse (p = 0.045). Kaplan-Meier analysis revealed significantly reduced OS (12.5 months vs. 26.9 months, HR = 2.96, p < 0.001) and survival after relapse (SAR) (5.9 months vs. 11.0 months, HR = 1.81, p < 0.001) in the early relapse group compared to the late relapse group. However, relapse patterns did not differ significantly between groups (p > 0.05). R1 resection is an independent risk factor for rapid postoperative relapse in LA-ESCC patients following neoadjuvant therapy. Furthermore, LVI significantly affects patients survival outcomes, and early relapse was strongly associated with reduced overall survival (OS).
INTRODUCTION:High-mobility group box 1 (HMGB1) protein plays a significant role in cancer development and treatment response. The current research on the role of HMGB1 in lung cancer and its treatment outcomes is limited and inconsistent. This exploratory study investigated the association between HMGB1 common genetic variants and lung cancer susceptibility, as well as cisplatin chemotherapy response, in a Chinese cohort. METHODS:The current study included 106 individuals diagnosed with lung cancer and 93 healthy subjects, all of whom were part of a Chinese population cohort. HMGB1 polymorphisms (rs1045411, rs1412125, rs2249825, and rs1360485) were genotyped using the TaqMan single-nucleotide polymorphism typing method. HMGB1 gene expression in the lung tissue of patients was quantified using real-time PCR. All patients were administered cisplatin, and their response to the drug was evaluated. All statistical analyses were performed using GraphPad Prism v10. RESULTS:The control group exhibited a higher frequency of heterozygous variants for HMGB1 polymorphisms rs1045411 (p = 0.01, odds ratio [OR] = 0.45) and rs1412125 (p = 0.03, OR = 0.46) than the patients. Moreover, the combined mutant genotypes for HMGB1 rs1045411 (p = 0.0001, OR = 0.15) and rs2249825 (p = 0.003, OR = 0.19) exhibited favorable responses to cisplatin treatment. Moreover, the wild-type variants of rs1045411 and rs2249825 exhibited higher HMGB1 expression than the mutants; however, this difference was not statistically significant. CONCLUSION:This preliminary investigation indicated potential associations between HMGB1 genetic variants and lung cancer susceptibility and treatment response. These exploratory findings necessitate further validation through larger multicenter studies incorporating functional assays to elucidate the biological significance and clinical utility of HMGB1 polymorphisms in the management of lung cancer.
SLC45A1 encodes a glucose transporter protein highly expressed in the brain. Mutations in SLC45A1 may lead to neurological diseases and developmental disorders, but its exact role is poorly understood. DNA G-quadruplexes (DNA G4s) are stable structures formed by four guanine bases and play a role in gene regulation and genomic stability. Changes in DNA G4s may affect brain development and function. The mechanism linking alterations in DNA G-quadruplex structures to SLC45A1 pathogenicity remains unknown. In this study, we identify a functional DNA G-quadruplex and its key binding site on SLC45A1 (NM_001080397.3: exon 2: c.449 G>A: p.R150K). This variant results in the upregulation of mRNA and protein expression, which may lead to intellectual developmental disorder with neuropsychiatric features. Mechanistically, the mutation is found to disrupt DNA G-quadruplex structures on SLC45A1, leading to transcriptional enhancement and a gain-of-function mutation, which further causes increased expression and function of the SLC45A1 protein. The identification of the functional DNA G-quadruplex and its effects on DNA G4s may provide new insights into the genetic basis of SLC45A1 pathogenicity and highlight the importance of DNA G4s of SLC45A1 in regulating gene expression and brain development.
Purpose Patients with advanced biliary tract cancer (BTC) have a poor survival. We aim to evaluate the efficacy and safety of nab-paclitaxel plus gemcitabine and cisplatin regimen in Chinese advanced BTC patients.Materials and Methods Eligible patients with locally advanced or metastatic BTC administrated intravenous 100 mg/m2 nab-paclitaxel, 800 mg/m2 gemcitabine, and 25 mg/m2 cisplatin every 3 weeks. The primary endpoint was progression-free survival (PFS). The secondary endpoints included overall survival (OS) and adverse events, while exploratory endpoint was the association of biomarkers with efficacy.Results After the median follow-up of 25.0 months, the median PFS and OS of 34 enrolled patients were 7.1 months (95% confidence interval [CI], 5.4 to 13.7) and 16.4 months (95% CI, 10.9 to 23.6), respectively. The most common treatment-related adverse events at ≥ 3 grade were neutropenia (26.5%) and leukopenia (26.5%). Survival analyses demonstrated that carcinoembryonic antigen (CEA) levels could monitor patients’ survival outcomes. A significant increase in the number of infiltrating CD4+ cells (p=0.008) and a decrease in programmed death-1–positive (PD-1+) cells (p=0.032) were observed in the response patients.Conclusion In advanced BTC patients, nab-paclitaxel plus gemcitabine and cisplatin regimen showed therapeutic potential. Potential prognostic factors of CEA levels, number of CD4+ cells and PD-1+ cells may help us maximize the efficacy benefit.
Although a role for TLR2 on T cells has been indicated in prior studies, in vivo stimulation of TLR2 on T cells by Mtb and its impact on Mtb infection has not been tested. Furthermore, it is not known if the enhanced susceptibility to Mtb of Tlr2 gene knockout mice is due to its role in macrophages, T cells, or both. To address TLR2 on T cells, we generated Tlr2fl/flxCd4cre/cre mice, which lack expression of TLR2 on both CD4 and CD8 T cells, to study the in vivo role of TLR2 on T cells after aerosol infection with virulent Mtb. Deletion of TLR2 in CD4+ and CD8+ T cells reduces their ability to be co-stimulated by TLR2 ligands for cytokine production. These include both pro- (IFN-γ, TNF-α) and anti-inflammatory cytokines (IL-10). Deletion of TLR2 in T cells affected control of Mtb in the lungs and spleens of infected mice. This suggests that T-cell co-stimulation by mycobacterial TLR2 ligands in vivo contributes to the control of Mtb infection in the lung and spleen.
Atherosclerosis is a significant contributor to global cardiovascular disease. Reducing the formation of atherosclerotic plaque effectively can lead to a decrease in cardiovascular diseases. Therefore, controlling macrophage function is crucial. This study presents the creation of a bifunctional nanoparticle that is specific to macrophages to achieve intracellular and extracellular synergistic therapy for restoring macrophage functions. The nanoparticle is conjugated with anti-CD47 antibody to modulate extracellular CD47-SIRPα phagocytic signaling axis on the outer surface of macrophages and encapsulates the NLRP3 inhibitor (CY-09) to regulate intracellular inflammation response of macrophages. The results showed that the nanoparticles accumulate in the atherosclerotic plaque, alter macrophage phagocytosis, inhibit NLRP3 inflammasome activation, and decrease the plaque burden in Apoe−/− mice whilst ensuring safety. Examination of single-cell RNA sequencing indicates that this multifunctional nanoparticle decreases the expression of genes linked to inflammation and manages inflammatory pathways in the plaque lesion. This study proposes a synergistic therapeutic approach that utilizes a bifunctional nanoparticle, conjugated with anti-CD47, to regulate the microenvironment of plaques.
Background Pretomanid is a key component of new regimens for the treatment of drug-resistant tuberculosis (TB) which are being rolled out globally. However, there is limited information on the prevalence of pre-existing resistance to the drug. Methods To investigate pretomanid resistance rates in China and its underlying genetic basis, as well as to generate additional minimum inhibitory concentration (MIC) data for epidemiological cutoff (ECOFF)/breakpoint setting, we performed MIC determinations in the Mycobacterial Growth Indicator Tube (TM) (MGIT) system, followed by WGS analysis, on 475 Mycobacterium tuberculosis (MTB) isolated from Chinese TB patients between 2013 and 2020. Results We observed a pretomanid MIC distribution with a 99% ECOFF equal to 0.5 mg/L. Of the 15 isolates with MIC values > 0.5 mg/L, one (MIC = 1 mg/L) was identified as MTB lineage 1 (L1), a genotype previously reported to be intrinsically less susceptible to pretomanid, two were borderline resistant (MIC = 2-4 mg/L) and the remaining 12 isolates were highly resistant (MIC >= 16 mg/L) to the drug. Five resistant isolates did not harbor mutations in the known pretomanid resistant genes. Conclusions Our results further support a breakpoint of 0.5 mg/L for a non-L1 MTB population, which is characteristic of China. Further, our data point to an unexpected high (14/475, 3%) pre-existing pretomanid resistance rate in the country, as well as to the existence of yet-to-be-discovered pretomanid resistance genes.
In our prior investigation, we discerned loss-of-function variants within the gene encoding glutamine-rich protein 2 (QRICH2) in two consanguineous families, leading to various morphological abnormalities in sperm flagella and male infertility. The Qrich2 knockout (KO) in mice also exhibits multiple morphological abnormalities of the flagella (MMAF) phenotype with a significantly decreased sperm motility. However, how ORICH2 regulates the formation of sperm flagella remains unclear. Abnormal glutamylation levels of tubulin cause dysplastic microtubules and flagella, eventually resulting in the decline of sperm motility and male infertility. In the current study, by further analyzing the Qrich2 KO mouse sperm, we found a reduced glutamylation level and instability of tubulin in Qrich2 KO mouse sperm flagella. In addition, we found that the amino acid metabolism was dysregulated in both testes and sperm, leading to the accumulated glutamine (Gln) and reduced glutamate (Glu) concentrations, and disorderly expressed genes responsible for Gln/Glu metabolism. Interestingly, mice fed with diets devoid of Gln/Glu phenocopied the Qrich2 KO mice. Furthermore, we identified several mitochondrial marker proteins that could not be correctly localized in sperm flagella, which might be responsible for the reduced mitochondrial function contributing to the reduced sperm motility in Qrich2 KO mice. Our study reveals a crucial role of a normal Gln/Glu metabolism in maintaining the structural stability of the microtubules in sperm flagella by regulating the glutamylation levels of the tubulin and identifies Qrich2 as a possible novel Gln sensor that regulates microtubule glutamylation and mitochondrial function in mouse sperm.
Alterations in steroid hormone regulation have been implicated in the etiology and progression of autism spectrum disorders (ASD), with the enzyme cytochrome P450 family 11 subfamily A member 1 (CYP11A1)—a key catalyst in cholesterol side-chain cleavage, prominently expressed in the adrenal glands, ovaries, testes, and placenta—standing at the forefront of these investigations. The potential link between aberrations in placental Cyp11a1 expression and the resultant neurodevelopmental disorders, along with the mechanisms underpinning such associations, remains inadequately delineated. In this study, we employed a placental trophoblast-specific Cyp11a1 Hipp11 (H11) knock-in murine model to dissect the phenotypic manifestations within the placenta and progeny, thereby elucidating the underlying mechanistic pathways.Behavioral analyses revealed a diminution in social interaction capabilities alongside an augmented anxiety phenotype, as evidenced by open field and elevated plus maze assessments; both phenotypes were ameliorated after vitamin D3 supplementation. Electrophysiological assays underscored the augmented inhibition of paired-pulse facilitation, indicating impaired neuroplasticity in Cyp11a1 H11-modified mice. An elevation in progesterone concentrations was noted, alongside a significant upregulation of Th1-related cytokines (IL-6 and TNFα) across the plasma, placental, and frontal cortex—a pathological state mitigable through vitamin D3 intervention. Western blotting revealed a vitamin D-mediated rectification of vitamin D receptor and PGC-1α expression dysregulations. Immunofluorescence assays revealed microglial activation in the knock-in model, which was reversible upon vitamin D3 treatment.In conclusion, Cyp11a1 overexpression in the placenta recapitulated an autism-like phenotype in murine models, and vitamin D3 administration effectively ameliorated the resultant neurobehavioral and neuroinflammatory derangements. This study substantiates the application of Cyp11a1 as a biomarker in prenatal diagnostics and posits that prenatal vitamin D3 supplementation is a viable prophylactic measure against perturbations in steroid hormone metabolism associated with ASD pathogenesis.
Alveolar macrophages (AM) perform a primary defense mechanism in the lung through phagocytosis of inhaled particles and microorganisms. AM are known to be relatively immunosuppressive consistent with the aim to limit alveolar inflammation and maintain effective gas exchange in the face of these constant challenges. How AM respond to T cell derived cytokine signals, which are critical to the defense against inhaled pathogens, is less well understood. For example, successful containment of Mycobacterium tuberculosis (Mtb) in lung macrophages is highly dependent on IFN-γ secreted by Th-1 lymphocytes, however, the proteomic IFN-γ response profile in AM remains mostly unknown. In this study, we measured IFN-γ induced protein abundance changes in human AM and autologous blood monocytes (MN). AM cells were activated by IFN-γ stimulation resulting in STAT1 phosphorylation and production of MIG/CXCL9 chemokine. However, the global proteomic response to IFN-γ in AM was dramatically limited in comparison to that of MN (9 AM vs 89 MN differentially abundant proteins). AM hypo-responsiveness was not explained by reduced JAK-STAT1 signaling nor increased SOCS1 expression. These findings suggest that AM have a tightly regulated response to IFN-γ which may prevent excessive pulmonary inflammation but may also provide a niche for the initial survival and growth of Mtb and other intracellular pathogens in the lung.
With the development of comprehensive treatment, locoregional transarterial chemotherapy has become an alternative conversion therapy, palliative therapy, and neoadjuvant therapy for many solid malignant tumors. Locoregional transarterial chemotherapy, which is most frequently used for treating liver cancer, has the characteristics of high regional efficacy and few systemic adverse reactions. In recent years, the number of relevant reports of locoregional chemotherapy for treating initially inoperable colorectal cancer (CRC), including non-metastatic and metastatic CRC, has gradually increased. However, the specific treatment options for such locoregional therapy are not the same, and its indications, medication regimens and combined treatments have not reached any consensus. In this review, the application status of locoregional transarterial chemotherapy in primary and metastatic CRC patients has been reviewed and summarized to provide a reference for future clinical work and scientific research.