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Type 1 diabetes (T1D) is a chronic autoimmune disease, typically diagnosed in childhood and adolescence, characterised by immune-mediated destruction of pancreatic β-cells. Multiple immune pathways contribute to this process, including autoreactive CD4+ and CD8+ T-cells, B-cells, and innate immune activation, driven by a complex interplay of genetic susceptibility (HLA and non-HLA loci) and environmental triggers that together define heterogeneity across metabolic and immunogenetic profiles.1, 2 The resulting insulin deficiency necessitates lifelong insulin therapy. Early-onset T1D and prolonged insulin use are associated with reduced life expectancy and greater cardiovascular morbidity and mortality.3 Preventive strategies are therefore required to delay disease onset. Teplizumab, an Fc receptor–binding anti-CD3 monoclonal antibody, was recently approved to delay T1D onset.4 It is licensed for use in individuals ≥8 years with Stage 2 T1D, defined by ≥2 positive islet autoantibodies, dysglycaemia without hyperglycaemic symptoms, and insulin use. Previous immunomodulatory therapies raised concerns about feasibility and long-term immunosuppression.1 Teplizumab is the first agent shown to delay clinical disease onset without evidence of chronic immunosuppression.4 A meta-analysis of 8 randomised trials including 754 patients reported that Teplizumab preserved C-peptide, reduced HbA1c, and delayed insulin initiation by up to 24 months versus placebo.5 Common adverse effects include rash, transient lymphopenia, abnormal liver function, gastrointestinal symptoms, and cytokine release syndrome.6, 7 As clinical trial populations are highly selected, the generalizability of these findings to real-world populations is uncertain. We therefore aimed to assess the clinical outcomes of patients treated with Teplizumab using electronic health records. We conducted a retrospective observational cohort study using TriNetX, a global federated research network comprising >150 million patients across >150 healthcare organisations (HCOs). Patients were eligible if they were aged ≥8 years and had been prescribed Teplizumab. Those with prior insulin use were excluded. Baseline characteristics, including mean glycated haemoglobin (HbA1c), serum C-peptide, islet autoantibody counts, and oral glucose tolerance test (OGTT) values were evaluated. The index event was the initiation of Teplizumab therapy. Formal ethical approval was not required, as only anonymised, aggregated data from the federated TriNetX platform were analyzed. Publication agreements are in place with HCOs. Data extraction occurred on 17 November 2025. Statistical analysis for cohort data was performed within the TriNetX platform. Descriptive statistics were used to summarise baseline demographic and clinical variables. Continuous data are presented as median (IQR) or as median (range) as appropriate, and categorical variables as counts and percentages. Kaplan–Meier survival analysis was used to evaluate time-to-event outcomes, specifically the time from teplizumab initiation to insulin commencement. Patients who had relevant outcomes coded before the analysis window or who did not experience the event during follow-up were censored at their last recorded observation. Fourty-two patients prescribed Teplizumab without prior insulin use were identified. Limited data was available. Median age at initiation of Teplizumab was 12 years (IQR 6). Median HbA1C was 5.7% (39 mmol/mol) (IQR 0.1%, n = 22) while 5000 children for both autoantibodies and HLA risk genotypes.12 Collectively, these initiatives demonstrate that large-scale childhood screening is achievable and provide critical infrastructure for the equitable deployment of disease-modifying therapies such as Teplizumab, while informing cost-effectiveness and implementation models. Our observed ~one-year progression rate (17%) is higher than that reported in the landmark TN-10 trial by Herold et al., where 7% of Teplizumab-treated participants progressed to Stage 3 T1D compared with 44% in the placebo group.13 Although demographic features such as median age, paediatric representation, and sex distribution are comparable between cohorts, baseline glycaemic status differed notably. Our cohort had a median HbA1c of 5.7% (range 4.9%–7.3%) versus 5.2% (range 4.9%–5.4%) in TN-10, suggesting a more dysglycaemic population at higher risk of progression. The broader HbA1c range in our analysis may also reflect greater heterogeneity in early metabolic control. Differences in attrition rates and dosing details, unavailable on the TriNetX platform, could further contribute to this discrepancy. Additionally, the use of coded electronic health record data introduces potential misclassification, particularly for insulin initiation. Finally, although our results are directionally consistent with evidence from randomised controlled trials, they should be regarded as interim given the absence of longer-term follow-up at this stage. When stratified by age, paediatric and adult outcomes were comparable, consistent with findings from TN-10, in which no significant age-related difference in efficacy was observed. Similarly, a clinical review by the U.S Food and Drug Administration (FDA) reported no efficacy difference between children and adolescents, although adult-specific analyses were limited by small numbers.14 In newly diagnosed T1D, the PROTECT phase 3 trial confirmed C-peptide preservation and reduced insulin requirements in paediatric participants.7 Collectively, these data suggest that Teplizumab's benefits extend across age groups, though earlier intervention, typically in younger individuals, may confer greater β-cell preservation. Longer-term follow-up data provide valuable insight into the sustained effects of Teplizumab beyond the first year. Herold et al. demonstrated persistent separation of Kaplan–Meier curves up to 3 years, with annualised progression rates of 14.9% in the treatment group versus 35.9% in placebo.13 Subsequent analyses have shown that benefits can extend beyond 5 years,15 and meta-analyses report larger between-group differences in insulin use at 24 months compared with 12 months.16 Each additional year free from clinical T1D represents a meaningful reduction in lifetime glycaemic burden and downstream complication risk,3 reinforcing the importance of early intervention once stage 2 disease is identified. Clinical trial data consistently demonstrates preserved C-peptide in Teplizumab-treated patients, reflecting better β-cell preservation. HbA1c results are less consistent, with some reporting modest reductions5 and others no significant change.16 C-peptide thus appears the more robust marker of pancreatic function and treatment efficacy. We were unable to assess changes in HbA1c or C-peptide in our cohort. Unfortunately, autoantibody and glycaemic data were available for fewer than 10 patients in our cohort; the much smaller sub-cohort does, however, demonstrate islet antibody positivity (GAD-65 and Zinc Transporter-8) and dysglycaemia, aligning with established criteria for Teplizumab initiation. Previously reported adverse events include rash, lymphopenia, liver dysfunction, and cytokine release syndrome.6, 7 While generally more favorable than typical immunomodulation therapy, published follow-up remains limited to ~2 years. Longer-term safety surveillance is required. The short follow-up period (<1 year) reflects the drug's novelty, and electronic health record analyses remain susceptible to coding inconsistencies and missing data. Our study was therefore underpowered to assess rarer outcomes, such as DKA or severe ADEs. Adults and caregivers of children who have received Teplizumab generally report positive treatment experiences, citing its potential to delay diabetes onset and improve quality of life.17 However, equitable access depends on identifying individuals with stage 2 disease, and large-scale implementation of screening remains a major barrier. Awareness of such screening may be restricted to specialists or even sub-specialists, and there is a need to encourage more widespread health care professional engagement and education around early T1D screening. Motivations for screening commonly include understanding personal risk, preventing diabetic ketoacidosis, delaying onset of Type 1 diabetes, and contributing to research knowledge. Despite the encouraging data around Teplizumab, many participants still eventually progress to Stage 3 T1D and require continuous lifestyle vigilance and frequent glucose monitoring. Qualitative research exploring perceptions of disease-modifying therapies (DMTs) similarly reveals divergent attitudes between adults and caregivers. Adults with T1D tend to view DMTs favorably as opportunities to reduce daily management burden, whereas caregivers of children often express caution, perceiving β-cell preservation as a temporary reprieve that may prolong uncertainty rather than provide reassurance.18 Together, these findings underscore the importance of transparent communication about expected benefits, realistic timelines, and psychosocial impacts when integrating DMTs such as Teplizumab into routine diabetes care. This study is among the first to evaluate Teplizumab use in real-world clinical practice across multiple healthcare organisations. Our preliminary findings add to the growing body of clinical trial evidence that Teplizumab significantly delays T1D onset in young people. Future research should address optimal strategies for identifying at-risk populations in clinical practice, long-term efficacy, robust monitoring of safety, and ensuring universal and equitable accessibility. Despite these encouraging findings, interpretation is limited by the modest cohort size, incomplete biochemical data, and reliance on coded electronic health record entries, which may underestimate events such as insulin initiation or adverse effects. The short follow-up period precludes assessment of longer-term durability, β-cell function, or safety beyond 1 year of treatment. Ongoing real-world surveillance and register-based analysis will therefore be important to confirm the durability of response, clarify optimal dosing strategies, and monitor for late adverse events as clinical adoption ensues. We kindly acknowledge support from the TriNetX Academic Research and Educational Support team. We acknowledge the use of ChatGPT (version GPT-5, OpenAI, https://chatgpt.com/) to help paraphrase and improve the clarity of some sentences. We acknowledge the creator Servier (https://smart.servier.com/) on Bioicons (https://bioicons.com/) for the artwork/images used within the graphical abstract, licensed under CC-BY 3.0 Unported https://creativecommons.org/licenses/by/3.0/. This research received no specific grant from any funding agency in the public, commercial, or not-for-profit sectors. S.M. has nothing to declare. M.A. receives a fellowship from the Novo Nordisk UK research foundation and JDRF. R.A.M. has received honoraria from Procter & Gamble, Viatris, Eli Lilly, and Sanofi for educational meetings and investigator-led funding from Procter & Gamble. D.J.C. has received investigator-initiated grants from Astra Zeneca and Novo Nordisk, support for education from Perspectum with any financial remuneration from pharmaceutical company consultation made to the University of Liverpool and serves as the Topic Advisor for Type 2 Diabetes medications for The National Institute for Health and Care Excellence (NICE), UK. U.A. has received honoraria from Procter & Gamble, Viatris, Grunenthal, Eli Lilly, Theras, Daiichi Sankyo and Sanofi for educational meetings and funding for attendance to an educational meeting from Sanofi and Daiichi Sankyo. U.A. has also received investigator-led funding by Procter & Gamble and is a council member of the Royal Society of Medicine's Vascular, Lipid & Metabolic Medicine Section. The peer review history for this article is available at https://www.webofscience.com/api/gateway/wos/peer-review/10.1111/dom.70354. Data used in this study was collected solely from the TriNetX network (https://trinetx.com). This data is not publicly available due to privacy restrictions in place. However, accredited researchers registered with TriNetX might request permission to access data via TriNetX. This may require a data-sharing agreement and may incur data access fees.
Mahesh et al. (Mon,) studied this question.