1.Strategic Optimization of CHO Cell Expression Platforms for Biopharmaceutical Manufacturing
Rui-Ming ZHANG ; Meng-Lin LI ; Hong-Wei ZHU ; Xing-Xiao ZHANG
Progress in Biochemistry and Biophysics 2026;53(2):327-341
Chinese hamster ovary (CHO) cells are the most established and versatile mammalian expression system for the large-scale production of recombinant therapeutic proteins, owing to their genetic stability, adaptability to serum-free suspension culture, and ability to perform human-like post-translational modifications. More than 70% of biologics approved by the U.S. Food and Drug Administration rely on CHO-based production platforms, underscoring their central role in modern biopharmaceutical manufacturing. Despite these advantages, CHO systems continue to face three persistent bottlenecks that limit their potential for high-yield, reproducible, and cost-efficient production: excessive metabolic burden during high-density culture, heterogeneity of glycosylation patterns, and progressive loss of long-term expression stability. This review provides an integrated analysis of recent advances addressing these challenges and proposes a forward-looking framework for constructing intelligent and sustainable CHO cell factories. In terms of metabolic regulation, excessive lactate and ammonia accumulation disrupts energy balance and reduces recombinant protein synthesis efficiency. Optimization of culture parameters such as temperature, pH, dissolved oxygen, osmolarity, and glucose feeding can effectively alleviate metabolic stress, while supplementation with modulators including sodium butyrate, baicalein, and S-adenosylmethionine promotes specific productivity (qP) by modulating apoptosis and chromatin structure. Furthermore, genetic engineering strategies—such as overexpression of MPC1/2, HSP27, and SIRT6 or knockout of Bax, Apaf1, and IGF-1R—have demonstrated significant improvements in cell viability and product yield. The combination of multi-omics metabolic modeling with artificial intelligence (AI)-based prediction offers new opportunities for building self-regulating CHO systems capable of dynamic adaptation to environmental stress. Regarding glycosylation uniformity, which determines therapeutic efficacy and immunogenicity, gene editing-based glycoengineering (e.g., FUT8 knockdown or ST6Gal1 overexpression) has enabled the humanization of CHO glycan profiles, minimizing non-human sugar residues and enhancing drug stability. Process-level strategies such as galactose or manganese co-feeding and fine control of temperature or osmolarity further allow rational regulation of glycosyltransferase activity. Additionally, in vitro chemoenzymatic remodeling provides a complementary route to construct human-type glycans with defined structures, though industrial applications remain constrained by cost and scalability. The integration of model-driven process design and AI feedback control is expected to enable real-time prediction and correction of glycosylation deviations, ensuring batch-to-batch consistency in continuous biomanufacturing. Long-term expression stability, another critical challenge, is often impaired by promoter silencing, chromatin condensation, and random genomic integration. Molecular optimization—such as the use of improved promoters (CMV, EF-1α, or CHO endogenous promoters), Kozak and signal peptide refinement, and incorporation of chromatin-opening elements (UCOE, MAR, STAR)—helps maintain durable transcriptional activity, while site-specific integration systems including Cre/loxP, Flp/FRT, φC31, and CRISPR/Cas9 can enable single-copy, position-independent gene insertion at genomic safe-harbor loci, ensuring stable, predictable expression. Collectively, this review highlights a paradigm shift in CHO system optimization driven by the convergence of genome editing, synthetic biology, and artificial intelligence. The transition from empirical optimization to rational, data-driven design will facilitate the development of programmable CHO platforms capable of autonomous regulation of metabolic flux, glycosylation fidelity, and transcriptional activity. Such intelligent cell factories are expected to accelerate the transformation from laboratory-scale research to industrial-scale, high-consistency, and economically sustainable biopharmaceutical manufacturing, thereby supporting the next generation of efficient and customizable biologics manufacturing.
2.Strategic Optimization of CHO Cell Expression Platforms for Biopharmaceutical Manufacturing
Rui-Ming ZHANG ; Meng-Lin LI ; Hong-Wei ZHU ; Xing-Xiao ZHANG
Progress in Biochemistry and Biophysics 2026;53(2):327-341
Chinese hamster ovary (CHO) cells are the most established and versatile mammalian expression system for the large-scale production of recombinant therapeutic proteins, owing to their genetic stability, adaptability to serum-free suspension culture, and ability to perform human-like post-translational modifications. More than 70% of biologics approved by the U.S. Food and Drug Administration rely on CHO-based production platforms, underscoring their central role in modern biopharmaceutical manufacturing. Despite these advantages, CHO systems continue to face three persistent bottlenecks that limit their potential for high-yield, reproducible, and cost-efficient production: excessive metabolic burden during high-density culture, heterogeneity of glycosylation patterns, and progressive loss of long-term expression stability. This review provides an integrated analysis of recent advances addressing these challenges and proposes a forward-looking framework for constructing intelligent and sustainable CHO cell factories. In terms of metabolic regulation, excessive lactate and ammonia accumulation disrupts energy balance and reduces recombinant protein synthesis efficiency. Optimization of culture parameters such as temperature, pH, dissolved oxygen, osmolarity, and glucose feeding can effectively alleviate metabolic stress, while supplementation with modulators including sodium butyrate, baicalein, and S-adenosylmethionine promotes specific productivity (qP) by modulating apoptosis and chromatin structure. Furthermore, genetic engineering strategies—such as overexpression of MPC1/2, HSP27, and SIRT6 or knockout of Bax, Apaf1, and IGF-1R—have demonstrated significant improvements in cell viability and product yield. The combination of multi-omics metabolic modeling with artificial intelligence (AI)-based prediction offers new opportunities for building self-regulating CHO systems capable of dynamic adaptation to environmental stress. Regarding glycosylation uniformity, which determines therapeutic efficacy and immunogenicity, gene editing-based glycoengineering (e.g., FUT8 knockdown or ST6Gal1 overexpression) has enabled the humanization of CHO glycan profiles, minimizing non-human sugar residues and enhancing drug stability. Process-level strategies such as galactose or manganese co-feeding and fine control of temperature or osmolarity further allow rational regulation of glycosyltransferase activity. Additionally, in vitro chemoenzymatic remodeling provides a complementary route to construct human-type glycans with defined structures, though industrial applications remain constrained by cost and scalability. The integration of model-driven process design and AI feedback control is expected to enable real-time prediction and correction of glycosylation deviations, ensuring batch-to-batch consistency in continuous biomanufacturing. Long-term expression stability, another critical challenge, is often impaired by promoter silencing, chromatin condensation, and random genomic integration. Molecular optimization—such as the use of improved promoters (CMV, EF-1α, or CHO endogenous promoters), Kozak and signal peptide refinement, and incorporation of chromatin-opening elements (UCOE, MAR, STAR)—helps maintain durable transcriptional activity, while site-specific integration systems including Cre/loxP, Flp/FRT, φC31, and CRISPR/Cas9 can enable single-copy, position-independent gene insertion at genomic safe-harbor loci, ensuring stable, predictable expression. Collectively, this review highlights a paradigm shift in CHO system optimization driven by the convergence of genome editing, synthetic biology, and artificial intelligence. The transition from empirical optimization to rational, data-driven design will facilitate the development of programmable CHO platforms capable of autonomous regulation of metabolic flux, glycosylation fidelity, and transcriptional activity. Such intelligent cell factories are expected to accelerate the transformation from laboratory-scale research to industrial-scale, high-consistency, and economically sustainable biopharmaceutical manufacturing, thereby supporting the next generation of efficient and customizable biologics manufacturing.
3.Trend in disease burden of asthma attributable to tobacco in China from 1990 to 2021
MA Rongjiao ; HUANG Hanyan ; ZHU Manyu ; LIU Rui ; SHI Fang
Journal of Preventive Medicine 2026;38(1):89-92
Objective:
To investigate the trend in disease burden of asthma attributable to tobacco in China from 1990 to 2021, so as to provide the basis for improving intervention measures of asthma.
Methods:
Data on asthma-related mortality and disability-adjusted life years (DALY) attributable to tobacco among adults aged ≥30 years in China from 1990 to 2021 were collected from the Global Burden of Disease (GBD) 2021 database. Age-standardized mortality and age-standardized DALY rate were calculated using the GBD world standard population structure to analyze the tobacco-attributable asthma burden. The average annual percent change (AAPC) was employed to evaluate temporal trends in the age-standardized mortality and DALY rate from 1990 to 2021.
Results:
In China, the age-standardized mortality and age-standardized DALY rate of asthma attributable to tobacco decreased from 0.73/100 000 and 22.20/100 000 in 1990 to 0.17/100 000 and 6.64/100 000 in 2021, showing downward trends (AAPC=-4.603% and -3.888%, both P<0.05). Among males, the tobacco-attributable age-standardized mortality and age-standardized DALY rate declined from 1.44/100 000 and 41.05/100 000 in 1990 to 0.36/100 000 and 12.79/100 000 in 2021 (AAPC=-4.369% and -3.810%, both P<0.05). Among females, the corresponding rates decreased from 0.21/105 and 5.37/105 to 0.03/105 and 1.08/105 (AAPC=-6.074% and -5.074%, both P<0.05). In 2021, males had higher tobacco-attributable age-standardized mortality and age-standardized DALY rate for asthma than females. Both the mortality and DALY rate of asthma attributable to tobacco increased with age, peaking in the age group ≥80 years at 7.84/100 000 and 112.07/100 000, respectively.
Conclusion
From 1990 to 2021, the disease burden of asthma attributable to tobacco showed a declining trend in China, with males and elderly population aged ≥80 years bearing a relatively heavier disease burden.
4.Literature analysis of euglycemic diabetic ketoacidosis induced by empagliflozin
Zhenzhen LEI ; Wei RUI ; Yanling SHI ; Jiayue ZHU ; Ying GANG ; Xiaodi SUN ; Hao ZHAN ; Junnan WANG ; Yukun NIU ; Wenxiang ZHANG
China Pharmacy 2026;37(14):1874-1879
OBJECTIVE To investigate the clinical characteristics of euglycemic diabetic ketoacidosis (euDKA) induced by empagliflozin, and provide references for safe medication. METHODS Case reports of euDKA induced by empagliflozin were retrieved and analyzed from PubMed, Web of Science, CNKI, and Wanfang Data. The Naranjo’s scale was adopted to assess the causal relationship between empagliflozin and euDKA. RESULTS A total of 29 patients were enrolled, including 16 males and 13 females,with a median age of 58 years. All patients were diagnosed with type 2 diabetes mellitus; 22 patients had at least one comorbidity. The median time to euDKA onset was 60 days after administration, and 7 cases occurred within 2 weeks of treatment. Perioperative periods,fasting,and low-carbohydrate or ketogenic diets were the main predisposing factors. Common presentations included nausea,vomiting, fatigue, tachypnea,and tachycardia. The causal relationship between empagliflozin and euDKA was assessed as “probable” in all cases. According to adverse reaction severity grading, 13 cases were grade 3 (severe) and 16 cases were grade 4 (life-threatening). All patients discontinued empagliflozin and recovered after corresponding treatment. CONCLUSIONS euDKA is a serious adverse reaction to empagliflozin, which mostly occurs early in treatment. Perioperative periods, fasting, and ketogenic diets are prone to induce euDKA. Elderly patients and those with comorbidities are at higher risk. Risk assessment should be conducted before clinical administration; blood ketones and acid-base monitoring should be strengthened in the early medication period; withhold the drug before elective surgery, avoid prolonged fasting;upon diagnosis, discontinue empagliflozin and initiate intravenous insulin, provide fluid resuscitation promptly, and use other treatments to improve patient prognosis.
5.Phenotypic characteristics of hexavalent chromium compound-induced malignant transformation in NIH/3T3 cells under three-dimensional culture conditions
Qi WANG ; Rui LI ; Wenke YU ; Fangfang ZHANG ; Lijin ZHU
China Occupational Medicine 2026;53(1):24-29
Objective To investigate the malignant phenotypic characteristics of NIH/3T3 cells induced by hexavalent chromium compound under three-dimensional (3D) culture conditions. Methods NIH/3T3 cells in the logarithmic growth phase were divided into four groups: two-dimensional (2D) control group, 2D transformation group, 3D control group, and 3D transformation group. The 2D control group underwent conventional culture, while the 3D control group was cultured with Matrigel. The 2D and 3D transformation groups were exposed to hexavalent chromium compound at a concentration of 0.25 mg/L based on their respective control conditions. Malignant transformation of NIH/3T3 cells was assessed using a soft agar colony formation assay. Malignant phenotypes were evaluated through assays of cell proliferation, apoptosis, cell cycle, wound healing, Transwell migration, and Transwell invasion. Results Cells in both the 2D and 3D transformation groups exhibited anchorage-independent growth, indicating successful malignant transformation. The colony formation rate of cells in the 3D transformation group was higher than that in the 2D transformation group [(6.17±1.31)% vs (1.00±0.41)%, P<0.01]. Compared with the 3D control group, cell proliferation, apoptosis rate, and migration cell count decreased [(100.00±0.00)% vs (95.01±3.49)%, (9.32±0.43)% vs (7.12±0.40)%, (62.50±11.27) vs (48.33±7.31), all P<0.05], while invasion cell count increased [(57.17±9.68) vs (122.83±15.41), P<0.05], and the relative migration area at 12, 24, and 48 hours also increased in 3D transformation group [(4.32±2.09)% vs (10.75±0.45)%, (5.87±1.32)% vs (11.47±0.99)%, (8.74±1.34)% vs (11.79±0.93)%, all P<0.05]. The proportions of cells in G0/G1, S, and G2/M phases between the 3D transformation and 3D control groups had no significant differences (all P>0.05). Conclusion Hexavalent chromium compounds induce key malignant phenotypes in NIH/3T3 cells, including anchorage-independent growth, reduced apoptosis, and enhanced migratory and invasive capacities.
6.Effect of remimazolam preoperative sedation on emergence delirium in children undergoing tonsillectomy and/or adenoidectomy
Fei WANG ; Rui ZHANG ; Yong XU ; Xian CHEN ; Yumin ZHU
Journal of Pharmaceutical Practice and Service 2026;44(8):426-430
Objective To evaluate the effect of remimazolam premedication on emergence delirium (ED) in children undergoing tonsillectomy and/or adenoidectomy. Methods Children aged 3-6 years who underwent tonsillectomy and/or adenoidectomy with general anesthesia in Zhongshan Hospital Affiliated to Xiamen University from July 2023 to September 2024 were randomly divided into 0.1 mg/kg remimazolam group (group R1), 0.2 mg/kg remimazolam group group R2) and normal saline group (group P). Three groups were sedated preoperatively with remimazolam 0.1 mg/kg, remimazolam 0.2 mg/kg and normal saline, respectively. The primary outcome was the incidence of ED. The secondary outcomes included the parental separation anxiety scale (PSAS) score when entering the operating room, the induction compliance checklist (ICC) score at induction, the anesthetic recovery time, the incidence of rescue propofol for ED, the face, legs, activity, cry, and consolability (FLACC) score and the incidence of postoperative pain during the recovery period, the incidence of adverse reactions during the operation and postoperatively, and the incidence of negative postoperative behavioral changes (NPOBCs) at first day, 7th day, 30th day postoperatively. Results A total of 119 children completed the study, including 41 children in group R1, 38 children in group R2, and 40 children ingroup P. The incidence of ED and propofol rescue, the PSAS scores and ICC scores of group R1 and R2 were lower than that of group P (P<0.05), and the above results in group R2 was better than those in group R1 (P<0.05). The FLACC score, the incidence of postoperative pain, and the incidence of adverse reactions among the three groups had no difference (P>0.05). The incidence of NPOBCs at 1st day and 7th day postoperatively in group R1 and group R2 was lower than that in group P (P<0.05), but no difference was detected at 30th day postoperatively among the three groups (P>0.05). Conclusion Remimazolam used for preoperative sedation could reduce the incidence of ED in children undergoing tonsillectomy and/or adenoidectomy, and had a positive effect on alleviating the preoperative anxiety and preventing NPOBCs.
7.Clinical application of incretin-based drugs in weight reduction and research progress of novel agents
Chengsi LUO ; Rui GAO ; Yanjiao ZHU ; Xichao WU ; Shuai HE ; Zhiying SONG ; An’an LI ; Penglin ZHOU ; Yan LI
China Pharmacy 2026;37(16):2202-2207
Incretin-based drugs have demonstrated significant clinical value in weight management and the treatment of metabolic diseases by mimicking or enhancing endogenous incretin signaling. These agents primarily target multiple receptors including glucagon-like peptide-1, glucose-dependent insulinotropic polypeptide, and glucagon, exerting weight-reducing effects through multiple mechanisms such as central appetite regulation, gastrointestinal function modulation, and peripheral metabolic improvement, while further ameliorating blood glucose, blood lipids, fatty liver, and cardiorenal metabolic risks. This review focuses on incretin-based drugs, systematically summarizing the key clinical application points and relevant research progress of domestically marketed and investigational candidate drugs in the field of weight reduction. Available evidence indicates that semaglutide and tirzepatide demonstrate substantial weight reduction with multiple metabolic benefits; domestic innovative drugs represented by mazdutide and ecnoglutide also exhibit favorable weight-reducing effects and safety profiles. Regarding safety, these agents are generally well-tolerated, with the most common adverse reactions being mild-to-moderate gastrointestinal events, while potential risks including gallbladder events, pancreatitis, and mood changes require attention. In special populations, individualized assessment is warranted for use in children, elderly people, and pregnant women. Future research should focus on the screening of predictive biomarkers for efficacy, the development of long-acting oral formulations, and the accumulation of long-term safety follow-up data.
8.The role of very-long-chain fatty acids in the pathogenesis of metabolic dysfunction-associated fatty liver disease
Jiaqi KONG ; Tingting REN ; Rui LIU ; Guizhong ZHOU ; Chuanlong ZHU
Journal of Clinical Hepatology 2026;42(8):1946-1951
Metabolic dysfunction-associated fatty liver disease (MAFLD) is the most common chronic liver disease, and it has become a major global health issue. Excessive lipid accumulation in the liver is the core pathological event of MAFLD, which triggers lipotoxicity and leads to cell apoptosis, necrosis, and inflammatory cascades by mediating endoplasmic reticulum stress, oxidative stress, organelle dysfunction, and ferroptosis, thereby promoting the progression of simple hepatic steatosis to steatohepatitis and fibrosis. In this process, very-long-chain fatty acids (VLCFAs), as essential components of cell membranes and lipid metabolism, have attracted increasing attention for their role in lipotoxicity mechanisms. This article reviews the role of VLCFAs in lipid metabolism processes and lipotoxicity mechanisms, focusing on how VLCFAs participate in metabolic regulation through key proteins and disrupt cell membranes to induce oxidative stress, and how their metabolites and derivatives drive inflammatory responses, ultimately promoting the progression of MAFLD.
9.Efficiency and safety of haematopoietic stem cell collection in healthy donors
Rui HE ; Bangqiang ZHU ; Huiqin WEN ; Haijing WANG ; Maohong BIAN ; Yujie DIAO
Chinese Journal of Blood Transfusion 2025;38(2):209-213
[Objective] To explore the key factors affecting the efficiency and safety of hematopoietic stem cell apheresis. [Methods] The clinical data of 59 healthy donors who underwent allogeneic hematopoietic stem cell donation in the First Affiliated Hospital of Anhui Medical University from January 2021 to June 2024 were retrospectively analyzed. The number of CD34+ cells was used to evaluate the eligibility of stem cell collection. The effects of donor gender, age, patient weight, as well as the number of WBC, MNC, RBC, Hb, HCT, PLT, CD34+ cells, CD34+ percentage and instrument operating parameters on collection efficiency were analyzed. [Results] A total of 59 donors were enrolled, and 68 occasions of stem cell apheresis were performed, with a qualified collection rate of 56%. Donor gender, age, patient weight, total blood circulation volume, anticoagulant dosage, collection time, calcium gluconate dosage and RBC, Hb, HCT levels were not significantly correlated with the collection effect (P>0.05). Multivariate logistic regression analysis showed that the number of MNC cells, CD34+ cells and stem cell product volume were the key factors affecting the efficiency and safety. A total of 12 donors had mild adverse reactions during the collection process, and all of them were improved after treatment. [Conclusion] Optimizing apheresis strategy based on the three factors of MNC, WBC count and stem cell product volume on the day of collection will help to achieve high-quality collection and improve the success rate of transplantation.
10.Inhibition of HDAC3 Promotes Psoriasis Development in Mice Through Regulating Th17
Fan XU ; Xin-Rui ZHANG ; Yang-Chen XIA ; Wen-Ting LI ; Hao CHEN ; An-Qi QIN ; Ai-Hong ZHANG ; Yi-Ran ZHU ; Feng TIAN ; Quan-Hui ZHENG
Progress in Biochemistry and Biophysics 2025;52(4):1008-1017
ObjectiveTo investigate the influence of histone deacetylase 3 (HDAC3) on the occurrence, development of psoriasis-like inflammation in mice, and the relative immune mechanisms. MethodsHealthy C57BL/6 mice aged 6-8 weeks were selected and randomly divided into 3 groups: control group (Control), psoriasis model group (IMQ), and HDAC3 inhibitor RGFP966-treated psoriasis model group (IMQ+RGFP966). One day prior to the experiment, the back hair of the mice was shaved. After a one-day stabilization period, the mice in Control group was treated with an equal amount of vaseline, while the mice in IMQ group was treated with imiquimod (62.5 mg/d) applied topically on the back to establish a psoriasis-like inflammation model. The mice in IMQ+RGFP966 group received intervention with a high dose of the HDAC3-selective inhibitor RGFP966 (30 mg/kg) based on the psoriasis-like model. All groups were treated continuously for 5 d, during which psoriasis-like inflammation symptoms (scaling, erythema, skin thickness), body weight, and mental status were observed and recorded, with photographs taken for documentation. After euthanasia, hematoxylin-eosin (HE) staining was used to assess the effect of RGFP966 on the skin tissue structure of the mice, and skin thickness was measured. The mRNA and protein expression levels of HDAC3 in skin tissues were detected using reverse transcription real-time quantitative polymerase chain reaction (RT-qPCR) and Western blot (WB), respectively. Flow cytometry was employed to analyze neutrophils in peripheral blood and lymph nodes, CD4+ T lymphocytes, CD8+ T lymphocytes in peripheral blood, and IL-17A secretion by peripheral blood CD4+ T lymphocytes. Additionally, spleen CD4+ T lymphocyte expression of HDAC3, CCR6, CCR8, and IL-17A secretion levels were analyzed. Immunohistochemistry was used to detect the localization and expression levels of HDAC3, IL-17A, and IL-10 in skin tissues. ResultsCompared with the Control group, the IMQ group exhibited significant psoriasis-like inflammation, characterized by erythema, scaling, and skin wrinkling. Compared with the IMQ group, RGFP966 exacerbated psoriasis-like inflammatory symptoms, leading to increased hyperkeratosis. The psoriasis area and severity index (PASI) skin symptom scores were higher in the IMQ group than those in the Control group, and the scores were further elevated in the IMQ+RGFP966 group compared to the IMQ group. Skin thickness measurements showed a trend of IMQ+RGFP966>IMQ>Control. The numbers of neutrophils in the blood and lymph nodes increased sequentially in the Control, IMQ, and IMQ+RGFP966 groups, with a similar trend observed for CD4+ and CD8+ T lymphocytes in the blood. In skin tissues, compared with the Control group, the mRNA and protein levels of HDAC3 decreased in the IMQ group, but RGFP966 did not further reduce these expressions. HDAC3 was primarily located in the nucleus. Compared with the Control group, the nuclear HDAC3 content decreased in the skin tissues of the IMQ group, and RGFP966 further reduced nuclear HDAC3. Compared with the Control and IMQ groups, RGFP966 treatment decreased HDAC3 expression in splenic CD4+ and CD8+ T cells. RGFP966 treatment increased the expression of CCR6 and CCR8 in splenic CD4+ T cells and enhanced IL-17A secretion by peripheral blood and splenic CD4+ T lymphocytes. Additionally, compared with the IMQ group, RGFP966 reduced IL-10 protein levels and upregulated IL-17A expression in skin tissues. ConclusionRGFP966 exacerbates psoriatic-like inflammatory responses by inhibiting HDAC3, increasing the secretion of the cytokine IL-17A, and upregulating the expression of chemokines CCR8 and CCR6.


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