Published online Sep 20, 2026. doi: 10.5493/wjem.125753
Revised: August 12, 2026
Accepted: September 16, 2026
Published online: September 20, 2026
Processing time: 67 Days and 0.6 Hours
Chimeric antigen receptor T-cell (CAR-T) therapy is highly active in relap
To describe, in an intention-to-collect fashion, the outcomes of all RRMM patients who underwent T-cell apheresis for planned CAR-T therapy; to characterise the apheresis-to-infusion interval and the reasons for, and correlates of, failure to reach infusion; and to report progression-free survival (PFS) and overall survival (OS) anchored at the date of apheresis. The study was descriptive; it was not designed to estimate the causal effect of CAR-T infusion on survival.
Retrospective single-centre cohort of all RRMM patients undergoing T-cell apheresis for CAR-T at Hackensack University Medical Center between 1 January 2021 and 30 April 2024. PFS and OS were calculated from apheresis by the Kaplan-Meier method with Greenwood 95% confidence intervals (CIs) and numbers at risk. Groups were compared with the log-rank test; baseline characteristics with the Wilcoxon rank-sum and Fisher exact tests. Because infusion is a post-baseline, time-dependent event, the association between infusion and survival was addi
Of 99 patients undergoing apheresis, 87 (87.9%, 95%CI: 79.8-93.6) were infused and 12 (12.1%, 95%CI: 6.4-20.2) were not. Median follow-up was 14.0 months [interquartile range (IQR): 8.2-20.7]. Median apheresis-to-infusion interval was 54 days (IQR 46-62; range 37-202; n = 84 evaluable). Contrary to our preliminary report, baseline disease phenotype differed significantly between groups: Extramedullary disease was present in 9/12 (75.0%) non-infused vs 17/87 (19.5%) infused patients (P < 0.001), and plasma cell leukaemia in 3/12 (25.0%) vs 3/87 (3.4%) (P = 0.017). Age, prior lines of therapy (median 5 in both), high-risk cytogenetics (36.4% vs 34.1%) and Revised International Staging System distribution did not differ. The commonest reasons for non-infusion were progressive disease or myeloma-related death (7/12, 58.3%), non-myeloma death (2/12, 16.7%), manufacturing or collection failure (2/12, 16.7%) and infection (1/12, 8.3%). The median time from apheresis to the attrition event was 44 days (IQR 30-72). Median PFS from apheresis was 17.5 months (95%CI: 12.7-21.6) in infused patients vs 1.5 months (95%CI: 0.8-2.3) in non-infused patients; median OS was not reached vs 1.9 months (95%CI: 1.0-6.2) (both log-rank P < 0.001). In the time-dependent Cox model the hazard ratio for death associated with infusion was 0.24 (95%CI: 0.11-0.53), substantially closer to the null than the unadjusted com
In this descriptive cohort, roughly one in eight patients who underwent apheresis never received CAR-T, and attrition clustered before the median time to infusion and among patients with extramedullary disease or plasma cell leukaemia. These data support shortening manufacturing turnaround, prioritising patients with aggressive phenotypes for expedited slots and intensified bridging, and reporting outcomes from apheresis using analytic methods that respect the time-dependent nature of infusion.
Core Tip: Among 99 myeloma patients undergoing apheresis for planned chimeric antigen receptor T-cell therapy, 12% progressed or died before manufacturing completed (median 54 days). This attrition disproportionately affected patients with aggressive phenotypes, such as extramedullary disease or plasma cell leukaemia. Because raw survival differences overstate treatment effects due to survival bias during manufacturing, time-dependent analyses are essential. Clinically, these findings highlight the urgent need for shorter manufacturing times, intensified bridging therapy and expedited scheduling for high-risk patients, and standardizing outcome reporting from the date of apheresis.
- Citation: Bangolo A, Gill S, Zhang L, Zhao J, Amoozgar B, Reich-Slotky R, Tran J, Vo T, Mariblanca G, Balulescu X, Mcknight S, Patel N, Reed A, Kaur S, Subramanian S, Katyal J, Manikkuttiyil C, Chakov M, Nguyen A, Pashine S, Khalil A, Mathew S, Gill R, Andrews V, Ordonez P, Olson B, Koleng M, Persaud R, Saride HS, Dharsi M, Thach R, Chen W, Shahid M, Weissman S, Siegel D, Parmar H, Biran N, Vesole DH, Phull P. Real-world outcomes for multiple myeloma patients after apheresis for planned chimeric antigen receptor T-cell therapy. World J Exp Med 2026; 16(3): 125753
- URL: https://www.wjgnet.com/2220-315x/full/v16/i3/125753.htm
- DOI: https://dx.doi.org/10.5493/wjem.125753
Chimeric antigen receptor T-cell (CAR-T) therapy has emerged as a transformative therapy in the management of relapsed or refractory multiple myeloma (RRMM). The pivotal phase 2 KarMMa study of idecabtagene vicleucel (ide-cel) demonstrated meaningful response rates and durability in heavily pre-treated RRMM, leading to its United States Food and Drug Administration approval in March 2021[1]. Subsequently, ciltacabtagene autoleucel (cilta-cel) in the phase 1b/2 CARTITUDE-1 trial achieved deep and durable responses, further reinforcing the role of B-cell maturation antigen (BCMA)-directed CAR-T therapy[2]. Both agents target BCMA, which is highly expressed on malignant plasma cells and therefore serves as a validated therapeutic target in RRMM. In addition to providing deeper and more durable remissions for penta-refractory patients who had a historically dismal prognosis[1,2], these therapies offer a potential treatment-free interval, shifting paradigms in myeloma care on several fronts.
Despite these advances, several important limitations remain. First, populations enrolled in pivotal trials are highly selected and may not reflect real-world patients, many of whom present with aggressive disease biology or multiple comorbidities. The International Myeloma Working Group (IMWG) consensus statement highlights the need for real-world data to complement trial findings in CAR-T therapy for myeloma[3], and real-world experience with ide-cel has shown different safety and efficacy profiles compared with the trial setting[4]. Second, the time from apheresis to infusion remains a critical operational bottleneck, and the lag between collection and infusion can result in clinical deterioration or progression in a subset of patients. Real-world series report apheresis-to-infusion rates in the region of 85%-95%, with attrition attributed predominantly to progression or death before product availability[4]. A real-world analysis by Al Hadidi et al[5] found that among patients wait-listed for commercial CAR-T, the median time to undergo apheresis was 3.7 months and the 12-month cumulative incidence of death while on the waitlist was 26%. These observations under
Emerging data suggest that the apheresis and bridging period itself carries prognostic implications: Pre-apheresis haematopoietic reserve, inflammatory markers, T-cell subsets in the apheresis product and bridging therapy have all been associated with post-infusion progression-free survival (PFS) and overall survival (OS)[6,7]. However, many published analyses exclude patients who underwent apheresis but never received an infusion, and thereby describe a survivor-enriched population. This is a classic manifestation of immortal-time bias: Because a patient cannot be classified as “infused” without first surviving the manufacturing interval, any analysis that conditions on infusion status guarantees a period of event-free time to the infused group[8]. Moving the index date to apheresis removes the mis-allocation of that person-time from the analysis clock, but by itself it does not solve the problem, because group membership is still defined by a post-baseline event. Doing so requires that infusion be modelled as a time-dependent exposure, or that a landmark be imposed[9,10]. To our knowledge, no real-world myeloma CAR-T series has combined apheresis anchoring with time-dependent exposure modelling, and we adopt both approaches here - while emphasising that neither can overcome confounding by indication in an observational cohort of this size.
In light of these issues, we performed a descriptive, intention-to-collect analysis of all patients with multiple myeloma who underwent apheresis for planned CAR-T therapy at our centre, regardless of whether they ultimately received an infusion. Our objectives were: (1) To quantify the proportion of patients who did not reach infusion and to characterise the reasons; (2) To describe the distribution of the apheresis-to-infusion interval; (3) To describe PFS and OS anchored at apheresis, with numbers at risk and confidence intervals (CIs); and (4) To explore, without causal claim, whether baseline characteristics were associated with failure to reach infusion. We did not set out to estimate the efficacy of CAR-T therapy, and the comparisons presented between infused and non-infused patients should not be read as such.
Finally, this work has significant implications for patient counselling, therapeutic planning, bridging strategies, and manufacturing workflows. Understanding the “drop-off” from apheresis to infusion, the time-dependency of progression risk during manufacturing, and the real-world success of identifying, collecting, and infusing eligible patients will inform future trial designs, institutional protocols, and health-system optimization. By using an inclusive chart-review approach covering a defined time-period (January 2021 to April 2024) at a high-volume academic center, this study adds to the growing evidence base of real-world cellular therapy in myeloma and highlights the full pathway from collection to infusion and beyond.
This was a single-centre, retrospective, descriptive intention-to-collect cohort study conducted at the John Theurer Cancer Center, Hackensack University Medical Center, Hackensack, NJ. The study evaluated real-world outcomes of patients with multiple myeloma who underwent apheresis for CAR T-cell therapy between 1 January 2021 and 30 April 2024. The administrative data cutoff was 12 July 2024. The protocol (Pro2024-0214, Version 1.0, 1 May 2024) was reviewed and approved by the Institutional Review Board. A waiver of informed consent and Health Insurance Portability and Accountability Act authorisation was granted.
The study population comprised adult patients with multiple myeloma who underwent apheresis for CAR T-cell manu
Eligible patients were identified through the John Theurer Cancer Center CAR-T registry and verified in Epic. Data were collected by trained investigators who had completed institutional research compliance and CITI training. Each chart was reviewed independently, using a standardised abstraction form. Disease response was assessed according to IMWG criteria. Discrepancies were resolved by consensus review of the primary record. Following peer review, a complete re-audit of all baseline variables against the primary record was performed by two investigators independently; discrepancies identified in this re-audit are reported in the Results and in the Limitations.
Efficacy outcomes were analyzed according to the IMWG criteria. Data abstraction followed a standardized data collection form to ensure uniformity and minimize variability between reviewers.
Extracted data included demographics; disease characteristics [Durie-Salmon stage, Revised International Staging System (R-ISS) stage, monoclonal protein isotype, cytogenetics and interphase fluorescence in situ hybridisation (FISH)]; presence of extramedullary disease (EMD) and plasma cell leukaemia (PCL); treatment history (induction regimen, response, prior lines, prior autologous or allogeneic transplantation); date of apheresis; bridging therapy; date of infusion; CAR-T product; and outcomes (date of progression, date of death, overall response rate, PFS, OS).
High-risk cytogenetics were defined a priori as the presence of any of del(17p), t(4;14), t(14;16), t(14;20), or gain/amplification of 1q21 on interphase FISH performed on CD138-selected plasma cells, consistent with IMWG and Mayo Stratification for Myeloma and Risk-Adapted Therapy criteria. EMD was defined as soft-tissue plasmacytoma not contiguous with bone, documented on cross-sectional imaging or biopsy at or within 3 months before apheresis. PCL was defined per the contemporaneous institutional standard (≥ 5% circulating plasma cells or ≥ 2 × 109/L). Bridging therapy was defined as any anti-myeloma systemic therapy or radiotherapy administered after apheresis and before lymphodepletion (or, in non-infused patients, after apheresis and before the attrition event).
All data were entered into a secure, password-protected database stored on institutional, HIPAA-compliant servers. Each subject was assigned a unique study identification code, which replaced identifiable information in the analytic dataset. The key linking study codes to patient identifiers was stored in a separate encrypted file accessible only to authorized study personnel. All identifying information will be destroyed once data extraction is complete. Study records will be retained for five years after study completion.
Analyses were performed in R version 4.3.2 (survival, survminer and cmprsk packages). Descriptive statistics summa
Between-group comparisons used the Wilcoxon rank-sum test for continuous variables and the Fisher exact test for categorical variables (the Fisher exact test replaced the χ2 test used in our preliminary report, because multiple expected cell counts were < 5).
PFS and OS were estimated by the Kaplan-Meier method with the date of apheresis as the index date for all patients in both groups. OS was measured from apheresis to death from any cause. PFS was measured from apheresis to the earlier of IMWG-defined progression or death from any cause. Patients alive and progression-free were censored at the date of last documented contact or at the administrative cutoff of 12 July 2024, whichever came first. One patient who declined further care and was lost to follow-up was censored at the date of last contact (1.7 months). Median survival times are reported with Brookmeyer-Crowley 95%CIs, and landmark survival probabilities with Greenwood 95%CIs; where the survival function equalled exactly 0.50 over an interval, the median is reported as the midpoint of that interval, and this convention is stated in the figure legends. Numbers at risk are tabulated at 0 months, 3 months, 6 months, 12 months, 18 months, 24 months and 30 months. Median follow-up was estimated by the reverse Kaplan-Meier method.
Handling of the time-dependent nature of infusion. Receipt of a CAR-T infusion is not a baseline attribute: It can only be observed in patients who survive the manufacturing interval. Comparisons of “infused” vs “non-infused” groups from the date of apheresis are therefore susceptible to immortal-time bias even when the index date is apheresis[8]. Kaplan-Meier curves stratified by eventual infusion status are presented for descriptive purposes only. To address the time-dependent exposure, two additional analyses were pre-specified at revision: (1) A Cox model in which infusion was entered as a time-varying covariate, with each infused patient contributing person-time to the “not yet infused” state from apheresis until the infusion date and to the “infused” state thereafter (Mantel-Byar approach[9]); and (2) A 60-day landmark analysis restricted to patients alive 60 days after apheresis, chosen because 60 days approximated the upper quartile of the observed manufacturing interval[10]. Both are reported as exploratory and are not adjusted for confoun
Correlates of failure to reach infusion were examined by univariable logistic regression, with odds ratios (ORs) and 95%CIs (Wald, with exact P values from the Fisher exact test for sparse tables). A multivariable model was pre-planned but was not fitted, because only 12 non-infusion events occurred and the events-per-variable ratio would have been well below accepted thresholds. All tests were two-sided; P < 0.05 was considered significant. No adjustment was made for multiple comparisons, and all p values other than those for the two pre-specified primary survival comparisons should be regarded as descriptive.
This study involves retrospective review of existing medical records and poses no direct risk to participants. The principal risk is potential loss of confidentiality; however, all data handling and storage procedures comply with HIPAA and institutional data security standards. No physical, psychological, or clinical interventions were performed as part of this study. The waiver of consent does not adversely affect participants’ rights or welfare, as the analysis is conducted on de-identified data.
A total of 99 patients with RRMM underwent apheresis for planned CAR T-cell therapy between January 2021 and April 2024 (Table 1). Eighty-seven (87.9%, 95%CI: 79.8-93.6) received a CAR-T infusion and 12 (12.1%, 95%CI: 6.4-20.2) did not. At the 12 July 2024 cutoff, median follow-up was 14.0 months (IQR 8.2-20.7) overall 14.6 months (IQR 9.3-20.9) among infused patients and 1.7 months (IQR 1.1-5.8) among non-infused patients. Among 84 infused patients with internally consistent dates, the median interval from apheresis to infusion was 54 days (IQR 46-62; range 37-202); the cumulative proportion infused was 59% by day 60 and 82% by day 90.
| Characteristic | CAR-T infused (n = 87) | Not infused (n = 12) | P value | Test |
| Age at apheresis, year, median (range) | 67.7 (36.7-81.7) | 70.2 (42.6-83.7) | 0.415 | Wilcoxon |
| Sex | Not evaluable (missing 87/87) | Not evaluable (missing 12/12) | - | - |
| Plasma cell leukaemia | 3/87 (3.4) | 3/12 (25.0) | 0.017 | Fisher |
| Extramedullary disease | 17/87 (19.5) | 9/12 (75.0) | < 0.001 | Fisher |
| High-risk cytogenetics1 | 29/85 (34.1) | 4/11 (36.4) | 0.88 | Fisher |
| Missing | 2 | 1 | - | - |
| R-ISS stage | - | - | 0.19 | Fisher |
| I | 11/66 (16.7) | 1/11 (9.1) | - | - |
| II | 52/66 (78.8) | 8/11 (72.7) | - | - |
| III | 3/66 (4.5) | 2/11 (18.2) | - | - |
| Not evaluable | 21 | 1 | - | - |
| Prior lines of therapy, median (range) | 5 (2-19) | 5 (4-8) | 0.431 | Wilcoxon |
| Prior autologous or allogeneic transplant | 81/87 (93.1) | 10/12 (83.3) | 0.24 | Fisher |
| Bridging therapy after apheresis | 33/87 (37.9) | 5/12 (41.7) | 0.80 | Fisher |
| Apheresis-to-infusion interval, days, median (IQR; range) | 54 (46-62; 37-202), n = 842 | Not applicable | - | - |
| Lymphodepleting regimen | ||||
| Fludarabine/cyclophosphamide | 43/87 (49.4) | - | - | - |
| Bendamustine | 44/87 (50.6) | - | - | - |
| Intended/administered CAR-T product | - | - | 0.55 | Fisher |
| Ciltacabtagene autoleucel | 45/87 (51.7) | 6/12 (50.0) | - | - |
| Idecabtagene vicleucel | 42/87 (48.3) | 6/12 (50.0) | - | - |
The median age at apheresis was 67.7 years (range 36.7-81.7) in the infused group and 70.2 years (range 42.6-83.7) in the non-infused group (P = 0.415). However, EMD was markedly more frequent among patients who did not reach infusion (9/12, 75.0% vs 17/87, 19.5%; P < 0.001), as was PCL (3/12, 25.0% vs 3/87, 3.4%; P = 0.017). There were no significant differences in high-risk cytogenetics (4/11, 36.4% vs 29/85, 34.1%; P = 0.88; missing in 1 and 2 patients respectively), median prior lines of therapy (5 in both groups; P = 0.431), R-ISS distribution among evaluable patients (P = 0.19; not evaluable in 1/12 and 21/87), prior autologous or allogeneic transplantation (10/12, 83.3% vs 81/87, 93.1%; P = 0.24), or intended CAR-T product (cilta-cel 6/12 vs 45/87; P = 0.55).
Bridging therapy was administered to 33/87 (37.9%) infused and 5/12 (41.7%) non-infused patients (P = 0.80). Bridging regimens included corticosteroid-based combinations, proteasome-inhibitor- and immunomodulatory-drug-based regi
| ID | Age band (year) | EMD | PCL | High-risk cyto | R-ISS | Prior lines | Intended product | Bridging regimen (category) | Days apheresis → attrition event | Reason not infused | Subsequent therapy | Outcome (months from apheresis) |
| N-01 | 60-64 | Yes | No | No | II | 7 | Ide-cel | None | 176 | Infection (bacteraemia, prolonged admission) | None | Died, 5.8 |
| N-02 | 80-84 | No | No | No | II | 4 | Ide-cel | None | 11 | Non-myeloma death (COVID-19, pulmonary embolism) | None | Died, 1.0 |
| N-03 | 75-79 | Yes | No | No | I | 6 | Ide-cel | Antibody-drug conjugate | 70 | Non-myeloma death (ischaemic stroke) | None | Died, 2.3 |
| N-04 | 60-64 | Yes | Yes | Yes | II | 4 | Cilta-cel | PI + BCL2 inhibitor + steroid | 34 | Manufacturing failure (out-of-specification product) | BCMA bispecific | Died, 6.2 |
| N-05 | 55-59 | Yes | No | No | II | 5 | Cilta-cel | None | 24 | Progressive disease + intracranial haemorrhage | None | Died, 0.8 |
| N-06 | 75-79 | Yes | No | Yes | II | 4 | Ide-cel | Radiotherapy | 71 | Progressive disease → bowel ischaemia | None | Died, 2.3 |
| N-07 | 40-44 | No | Yes | Yes | III | 5 | Cilta-cel | None | 51 | Progressive disease; declined further therapy | None | Lost to follow-up; censored 1.7 |
| N-08 | 80-84 | Yes | No | No | II | 5 | Cilta-cel | Alkylator + PI + steroid | 47 | Progressive disease | None | Died, 1.5 |
| N-09 | 65-69 | Yes | No | Yes | II | 5 | Ide-cel | BCMA bispecific | 33 | Progressive disease | None | Died, 1.1 |
| N-10 | 60-64 | Yes | Yes | No | III | 8 | Cilta-cel | None | 5 | Progressive disease | None | Died, 0.2 |
| N-11 | 80-84 | Yes | No | Unknown | Unknown | 7 | Ide-cel | None | 196 | Collection failure (inadequate CD3+ yield) | GPRC5D bispecific | Alive, 11.7 |
| N-12 | 70-74 | No | No | No | II | 5 | Cilta-cel | None | 42 | Progressive disease | None | Died, 1.4 |
Among the 12 patients who did not receive an infusion, 7 (58.3%) did not proceed because of rapid disease progression or myeloma-related death before product delivery; the remainder were attributed to non-myeloma death (2/12, 16.7%: Fatal pulmonary embolism in the context of coronavirus disease 2019, and ischaemic stroke), manufacturing or collection failure (2/12, 16.7%: One out-of-specification product and one inadequate cell yield) and infection (1/12, 8.3%: Bacte
These analyses are descriptive; see the following section for time-dependent analyses. At last follow-up, documented disease progression had occurred in 36/87 (41.4%) infused patients and a further 6 died without documented progres
Median PFS from apheresis was 17.5 months (95%CI: 12.7-21.6) among infused patients and 1.5 months (95%CI: 0.8-2.3) among non-infused patients (log-rank P < 0.001; Figure 1). Estimated PFS at 6 and 12 months was 81.0% (95%CI: 71.2-87.6) and 67.9% (95%CI: 56.9-76.8) in the infused group, vs 8.3% (95%CI: 0.5-31.1) and 0% in the non-infused group. Median OS was not reached in the infused group (95%CI: Not estimable) and was 1.9 months (95%CI: 1.0-6.2) in the non-infused group (log-rank P < 0.001; Figure 2). Estimated OS at 12 months and 24 months was 88.6% (95%CI: 79.6-93.8) and 75.1% (95%CI: 62.6-84.0) in the infused group, vs 10.0% (95%CI: 0.6-35.8) and 0% in the non-infused group. Numbers at risk at each timepoint are shown beneath Figures 1 and 2. Figure 3 shows the patient-flow diagram.
In the Mantel-Byar time-dependent Cox model, in which all patients contributed person-time to the pre-infusion state from apheresis until infusion, the hazard ratio for death associated with being in the infused state was 0.24 (95%CI: 0.11-0.53; P = 0.001); the corresponding estimate for the composite PFS endpoint was 0.53 (95%CI: 0.28-1.00; P = 0.05). In the 60-day landmark analysis (92 patients alive at day 60: 87 subsequently or already infused, 5 not infused), median OS measured from the landmark was not reached vs 3.8 months, with an unadjusted hazard ratio (HR) of 0.06 (95%CI: 0.02-0.18).
These estimates should be interpreted with caution and in the following order. The unadjusted Kaplan-Meier com
In univariable logistic regression (Table 3), EMD (OR = 12.4, 95%CI: 3.0-50.6; P < 0.001) and PCL (OR = 9.3, 95%CI: 1.6-53.4; P = 0.012) were associated with failure to reach infusion. Age (OR per 10 years 1.24, 95%CI: 0.71-2.16; P = 0.45), high-risk cytogenetics (OR = 1.10, 95%CI: 0.30-4.05; P = 0.88), R-ISS stage III (OR = 4.7, 95%CI: 0.7-31.9; P = 0.13) and the number of prior lines (medians identical; P = 0.431) were not. CIs are wide, and these estimates are unstable and unadjusted for multiplicity; a multivariable model was not fitted because only 12 events occurred. In a sensitivity analysis excluding the two patients whose attrition was attributable purely to manufacturing or collection failure, the association with EMD persisted (8/10 vs 17/87; P < 0.001). Table 4 shows numbers at risk from the date of apheresis.
| Variable | Not infused | Infused | OR (95%CI) | P value |
| Extramedullary disease | 9/12 (75.0) | 17/87 (19.5) | 12.4 (3.0-50.6) | < 0.001 |
| Plasma cell leukaemia | 3/12 (25.0) | 3/87 (3.4) | 9.3 (1.6-53.4) | 0.012 |
| R-ISS stage III (vs I-II) | 2/11 (18.2) | 3/66 (4.5) | 4.7 (0.7-31.9) | 0.13 |
| High-risk cytogenetics | 4/11 (36.4) | 29/85 (34.1) | 1.10 (0.30-4.05) | 0.88 |
| Age (per 10 years) | Median 70.2 | Median 67.7 | 1.24 (0.71-2.16) | 0.45 |
| Prior lines of therapy | Median 5 | Median 5 | - | 0.4311 |
| Months from apheresis | 0 | 3 | 6 | 12 | 18 | 24 | 30 |
| PFS - infused: At risk | 87 | 82 | 65 | 37 | 16 | 6 | 1 |
| PFS - infused: % (95%CI) | 100 | 94.3 (86.7-97.6) | 81.0 (71.2-87.6) | 67.9 (56.9-76.8) | 49.2 (37.5-60.0) | 32.6 (21.1-44.6) | 20.9 (9.6-35.2) |
| PFS - not infused: At risk | 12 | 2 | 1 | 0 | 0 | 0 | 0 |
| PFS - not infused: % (95%CI) | 100 | 16.7 (2.7-41.3) | 8.3 (0.5-31.1) | 0 | 0 | 0 | 0 |
| OS - infused: At risk | 87 | 85 | 76 | 50 | 27 | 15 | 6 |
| OS - infused: % (95%CI) | 100 | 97.7 (91.1-99.4) | 94.1 (86.6-97.4) | 88.6 (79.6-93.8) | 82.7 (72.2-89.5) | 75.1 (62.6-84.0) | 65.7 (48.3-78.5) |
| OS - not infused: At risk | 12 | 3 | 2 | 0 | 0 | 0 | 0 |
| OS - not infused: % (95%CI) | 100 | 25.0 (6.0-50.5) | 20.0 (3.5-46.0) | 10.0 (0.6-35.8) | 0 | 0 | 0 |
Taken together, attrition in this cohort was neither random nor purely logistical: It clustered in patients with aggressive baseline disease phenotypes and occurred at a median of 44 days after collection, within the expected manufacturing window. Because these two explanations are correlated and the cohort is small, they cannot be disentangled here.
In this descriptive intention-to-collect analysis of 99 patients with RRMM undergoing apheresis for planned CAR-T therapy, 87 (87.9%) were infused after a median of 54 days and 12 (12.1%) were not. Attrition was attributable to progres
The proportion of patients not infused after apheresis in our cohort is consistent with published real-world experience, in which apheresis-to-infusion rates for commercial ide-cel and cilta-cel generally fall in the range of 85%-95%, with most attrition due to progression or death before manufacturing completion[4]. Al Hadidi et al[5] highlighted an earlier and larger hurdle, reporting a median of 3.7 months from waitlisting to apheresis and death in approximately one quarter of patients while waiting. Total attrition from the point of CAR-T eligibility to infusion is therefore considerably higher than the 12.1% we observed after apheresis, and our estimate should be read as a lower bound conditional on having reached collection. Pre-infusion attrition therefore remains a non-trivial barrier to CAR-T delivery in contemporary practice.
Conventional prognostic variables - age, R-ISS stage, high-risk cytogenetics and prior lines of therapy - did not differ between groups, and in this respect our cohort resembles published real-world ide-cel and cilta-cel series[4,11,12]. However, two markers of aggressive disease phenotype, EMD and PCL, were strongly over-represented among patients who never reached infusion. This is biologically coherent: Both are characterised by high proliferative rate and short doubling times, and both are recognised adverse features in real-world CAR-T cohorts[4,13,14]. It is also consistent with the observed timing of attrition, which occurred at a median of 44 days, before the median 54-day manufacturing interval had elapsed. The clinically actionable inference is not that biology is destiny, but that patients with EMD or PCL are the group in whom a 7- to 8-week wait is least survivable, and therefore the group for whom expedited slots, prioritised manufacturing and intensified bridging should be reserved[15-17].
We note, however, that 17 patients with EMD and 3 with PCL were successfully infused, so these features are not in themselves a contraindication to embarking on the CAR-T pathway; they identify patients who require the pathway to be compressed.
Among non-infused patients, the dominant reason for attrition was rapid progression or death before product delivery (58.3%), which parallels published real-world series[4,5]. Bridging therapy was used with similar frequency in both groups (37.9% vs 41.7%), and in 4 of the 5 non-infused patients who received it the disease progressed during or immedia
The difference in survival between infused and non-infused patients was large in absolute terms, and non-infused patients in our cohort, as in others, generally died within weeks of the decision point[5,21]. We caution against over-reading this contrast. Three factors inflate it: The guarantee time inherent in reaching infusion; confounding by the higher prevalence of EMD and PCL among the non-infused; and the very small size of the non-infused group, which yields imprecise medians. The appropriate summary is that failure to reach infusion identifies a patient population with a life expectancy measured in weeks, not that infusion would have conferred the observed difference had it been delivered.
From a clinical standpoint, our data support a two-part strategy. First, because attrition concentrated in patients with EMD and PCL, risk-stratified triage at the time of referral appears justified: These patients should be considered for expedited apheresis slots, prioritised manufacturing where available, more intensive and more frequently reassessed bridging, and early discussion of alternative or salvage options - including BCMA- or GPRC5D-directed bispecific antibodies, which do not require manufacturing - should progression occur during the wait. Second, because two-thirds of attrition events occurred inside the median manufacturing window, operational compression remains essential for the whole cohort: Point-of-care and rapid (“fast”) manufacturing platforms[14,21], allogeneic products, and elimination of administrative delay in referral and payer authorisation. These strategies are complementary, and our data are not able to establish the relative contribution of biology and logistics.
Operationally, our findings also reinforce the need for early referral to cellular therapy centers and multidisciplinary coordination. Because attrition also occurred in patients with standard-risk cytogenetics and non-advanced stage, no patient entering the pathway should be regarded as immune to it. The high attrition observed even among patients with standard-risk cytogenetics suggests that delays in referral, insurance authorization, or cell processing may inadvertently exclude otherwise eligible patients. Institutions should consider implementing expedited workflows and CAR-T readi
Our study contributes to the growing body of real-world evidence demonstrating that the period between apheresis and infusion remains a critical vulnerability in CAR-T therapy for RRMM. While our analysis focuses on the pre-infusion period, the entire therapeutic journey, including post-infusion management, is critical for long-term success. Patients with RRMM exhibit considerable tumor heterogeneity, and while managing the manufacturing window is paramount, post-infusion strategies are equally important. Future research should explore the role of minimal residual disease-guided maintenance therapy or other strategies to optimize the duration of treatment and avoid both under- and over-treatment, thereby maximizing the durable benefit of this therapy. The comparable baseline characteristics between infused and non-infused patients, coupled with dramatically different survival outcomes, highlight that logistical efficiency and optimized bridging strategies - not disease biology - will be central to improving outcomes. Future prospective studies should prioritize time-to-infusion as a key metric, evaluate predictive markers of rapid progression, and explore novel therapeutic platforms designed to bridge or eliminate this high-risk gap in the CAR-T treatment continuum.
This study’s major strengths include its real-world, IRB-approved, intention-to-collect design that anchors PFS/OS at apheresis - capturing the full at-risk window and avoiding infusion-only immortal-time bias - its inclusion of both infused and non-infused patients with largely comparable baseline characteristics, and its contemporary scope featuring balanced use of the two Food and Drug Administration-approved BCMA CAR-T products and two standard lymphodepleting regimens, which enhances relevance and external applicability; rigorous, standardized data abstraction and survival analyses (Kaplan-Meier/Log-rank) further bolster internal validity, while the explicit delineation of attrition causes (progression/death > manufacturing/infection) yields actionable operational insights for bridging and workflow opti
In this descriptive, intention-to-collect real-world cohort, 12.1% of patients with RRMM who underwent apheresis for planned CAR-T therapy never received an infusion. Attrition occurred at a median of 44 days after collection - within the median 54-day manufacturing interval - and was concentrated among patients with EMD and PCL, indicating that failure to reach infusion reflects aggressive disease phenotype as well as elapsed time. Read together with the reported 3.7-month median wait and 26% waitlist mortality before apheresis, these findings define the pre-infusion period as the principal vulnerability of the myeloma CAR-T pathway. They argue for earlier referral, compressed manufacturing turna
This article is a revised and expanded version of a paper entitled “Real World Outcomes of Multiple Myeloma Patients Who Underwent Apheresis for Planned Chimeric Antigen Receptor (CAR) T Cell Therapy: A Single Center Experience” which was presented at ASH Conferences in San Diego, CA, United Sates, December 2024.
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