A live tumor fragment platform to assess immunotherapy response in core needle biopsies while addressing challenges of tumor heterogeneity

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The paper describes a live tumor fragment (LTF) platform for ex vivo assessment of immune checkpoint inhibitor (ICI) response using tumor fragments generated from 59 human resections and 31 core needle biopsies, encapsulated in hydrogel and cultured up to 72 hours. Using a sequential treatment strategy that applies control and treatment within the same well, the authors measured cytokine induction with multiplex secretome assays and confirmed preserved tumor microenvironment features (including CD4+ and CD8+ proportions) and T-cell responsiveness, with viability supported by metabolic and dynamic optical coherence microscopy readouts. Specimens positive for PD-L1 or deficient mismatch repair/high microsatellite instability showed enrichment for T-cell response cytokines such as IFNγ and CXCL10 after anti–PD-1 (αPD-1) treatment; a key limitation acknowledged in the abstract is that clinical predictive performance is still pending, with ongoing trials planned for validation. The paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

ABSTRACT Background Immune checkpoint inhibitors (ICIs) have revolutionized cancer treatment, providing durable and even curative responses. However, most patients do not respond and current biomarkers (eg, programmed death ligand (PD-L1), mismatch repair deficiency (dMMR)/high microsatellite instability (MSI) and tumor mutational burden) lack predictive accuracy. Ex vivo profiling of patient-derived tumor fragments shows promise as a predictive biomarker but relies on substantial surgical tissue to mitigate intra-specimen heterogeneity. Innovations are needed that address these challenges, particularly where limited tissue is available in core needle biopsies (CNBs). Methods Live tumor fragments (LTFs) were generated from 59 human tumor resections and 31 CNBs from patients enrolled in observational clinical trials (ClinicalTrials.gov identifiers: NCT05478538 , NCT05520099 , NCT06349642 ) to assess cytokine induction following ICI treatment. LTFs were encapsulated in hydrogel and cultured ex vivo for up to 72 hours. A sequential treatment strategy that applies control and treatment within the same well was used with response to ICI or αCD3/αCD28 assessed using a multiplex secretome assay. Viability was assessed using established metabolic assays and dynamic optical coherence microscopy. Results LTFs maintained viability and retained T cells responsive to stimulation throughout ex vivo culture. Multiplex immunofluorescence and immunohistochemistry showed key components of the tumor microenvironment, including relative proportions of CD4+ and CD8+ immune cell populations, were preserved. Specimens positive for PD-L1 or dMMR/MSI-high were enriched for cytokine upregulation, including T-cell response cytokines IFNγ and CXCL10, after αPD-1 treatment. To demonstrate clinical applicability of the sequential treatment strategy, CNBs from patients with lung, gastrointestinal or kidney cancer were profiled and differential cytokine induction in response to ICI treatment was observed. Conclusions The novel ex vivo platform presented is capable of detecting T-cell response to ICI treatment by using a sequential treatment strategy. This approach addresses challenges associated with cross-well heterogeneity in tissue composition and requires half as much tissue as a cross-well comparison, mitigating tissue limitations typically associated with non-surgical biopsies. Importantly, the platform is compatible with established functional assays as well as non-destructive spatial imaging, enabling researchers to characterize response to ICI longitudinally. Ongoing trials will enable clinicians to assess platform performance in predicting response to immunotherapy.
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Abstract

Background Immune checkpoint inhibitors (ICIs) have revolutionized cancer treatment, providing durable and even curative responses. However, most patients do not respond and current biomarkers (eg, programmed death ligand (PD-L1), mismatch repair deficiency (dMMR)/high microsatellite instability (MSI) and tumor mutational burden) lack predictive accuracy. Ex vivo profiling of patient-derived tumor fragments shows promise as a predictive biomarker but relies on substantial surgical tissue to mitigate intra-specimen heterogeneity. Innovations are needed that address these challenges, particularly where limited tissue is available in core needle biopsies (CNBs).

Methods

Live tumor fragments (LTFs) were generated from 59 human tumor resections and 31 CNBs from patients enrolled in observational clinical trials (ClinicalTrials.gov identifiers: NCT05478538, NCT05520099, NCT06349642) to assess cytokine induction following ICI treatment. LTFs were encapsulated in hydrogel and cultured ex vivo for up to 72 hours. A sequential treatment strategy that applies control and treatment within the same well was used with response to ICI or αCD3/αCD28 assessed using a multiplex secretome assay. Viability was assessed using established metabolic assays and dynamic optical coherence microscopy.

Results

LTFs maintained viability and retained T cells responsive to stimulation throughout ex vivo culture. Multiplex immunofluorescence and immunohistochemistry showed key components of the tumor microenvironment, including relative proportions of CD4+ and CD8+ immune cell populations, were preserved. Specimens positive for PD-L1 or dMMR/MSI-high were enriched for cytokine upregulation, including T-cell response cytokines IFNγ and CXCL10, after αPD-1 treatment. To demonstrate clinical applicability of the sequential treatment strategy, CNBs from patients with lung, gastrointestinal or kidney cancer were profiled and differential cytokine induction in response to ICI treatment was observed.

Conclusions

The novel ex vivo platform presented is capable of detecting T-cell response to ICI treatment by using a sequential treatment strategy. This approach addresses challenges associated with cross-well heterogeneity in tissue composition and requires half as much tissue as a cross-well comparison, mitigating tissue limitations typically associated with non-surgical biopsies. Importantly, the platform is compatible with established functional assays as well as non-destructive spatial imaging, enabling researchers to characterize response to ICI longitudinally. Ongoing trials will enable clinicians to assess platform performance in predicting response to immunotherapy. Competing Interest Statement T.S.R., C.M.S., P.A., C.J., S.C., L.C.F.H., L.V., N.D., C.B., T.B., Y.C., T.D., E.F., N.K., A.K., M.K., C.L., N.M., P.D., A.N., V.P., J. R., S.S., M.S., C.S., A.S., E.v.E., E.W., E.W., M.S., S.J., J.O. and H.J.G are employed by Elephas. T.S.R., C.M.S., P.A., C.J., S.C., L.C.F.H., L.V., N.D., C.B., T.B., Y.C., T.D., E.F., N.K., A.K., M.K., C.L., N.M., P.D., A.N., V.P., J. R., S.S., M.S., J.G., C.S., A.S., E.W., E.W., M.S., S.J., J.O., A.F., K.E., and H.J.G hold Elephas stock options. T.S.R., P.A., S.C., M.K., S.J., hold U.S. Patent App. No. 19/038,52. J.R., A.F., K.E., C.C., J.T., and D.B., receive consulting fees from Elephas. D.M. received travel funds from Elephas LIST OF ABBREVIATIONS - αPD-1 - anti-programmed cell death-1 - αPD-L1 - anti-programmed cell death ligand-1 - CCK8 - cell counting kit 8 - CDx - Companion diagnostic - CD3/CD28 - cluster of differentiation 3/28 - CNB - core needle biopsy - CTLA4 - cytotoxic T-lymphocyte-associated protein 4 - CV - coefficient of variation - CXCL10 - C-X-C motif chemokine ligand 10 - dMMR - deficient DNA mis-match repair - dOCM - dynamic Optical Coherence Microscopy - DPBS - Dulbecco’s phosphate buffered saline - FBS - fetal bovine serum - GI - gastrointestinal - H&E - hematoxylin and eosin - ICI - immune checkpoint inhibitor - IF - immunofluorescence - IFNγ - interferon gamma - IgG - immunoglobulin G - IHC - immunohistochemistry - IL-1Ra - interleukin-1 receptor agonist - LDH - lactate dehydrogenase - LLOQ - lower limit of quantitation - LTF - live tumor fragment - MAD - median absolute deviation - mIF - multiplexed immunofluorescence - MMR - DNA mis-match repair - MSI - microsatellite instability - NAD(P)H - nicotinamide adenine dinucleotide phosphate - NSCLC - non-small cell lung carcinoma - PBMC - peripheral blood mononuclear cell - PDX - patient-derived xenograft - pMMR - proficient - DNA - mis-match repair - TME - tumor microenvironment - WST-8 - water-soluble tetrazolium salt

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