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Tissue & Cell Analytics

Tissue & Cell Analytics

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Tissue & Cell Analytics

The Department of Tissue & Cell Analytics consists of the Central Cell Culture and the Immunomonitoring Units. The Central Cell Culture Unit focuses in the standardized generation, characterization, quality control, and long-term maintenance of high-quality cell banks. We produce and validate stably engineered cell lines and develop advanced physiologically relevant 3D cell culture models to support translational research and preclinical applications.

The Immunomonitoring Unit is specialized in analysis of clinical samples using sensitive and robust multi-parametric assays to identify immunological signatures for stratification, prediction and prognosis of immuno-therapies in the context of (pre-) clinical trials/ studies improving new ways of treatment.

  • Dr. Anne Kölsch

    Director Tissue and Cell Analytics

  • Dr. Sebastian Attig

    Associate Director Tissue and Cell Analytics

Our vision

We specialize in working with primary materials derived from clinical samples as well as cell lines. The provision of high-quality samples forms the essential basis for reliable and reproducible data - the crucial basis for all high complex analyses.

Central Cell Culture

  • Dr. Anne Kölsch

    Head of Functional Unit Central Cell Culture

  • Garnet Walter

    Deputy Head of Functional Unit Central Cell Culture

Our activities and Competences

Our methods and platforms

Cell Banking Platform

Management of a large collection of authenticated human and animal cell lines.
Standardized workflows for acquisition, cell expansion, cryopreservation, quality control, and long-term storage of authenticated cell lines.

Cell Line Generation Platform

Bulk generation of engineered cells, single clone generation (monoclonality) by single-cell seeding and monitored monoclonal outgrowth.
Ensuring compliance with regulatory requirements.
Virus-free testing by ELISA or re-infection assay.

3D Bioreactor Platform

Generation and cultivation of organoids using bioreactor-based technologies for scalable and reproducible 3D cell culture.

Incucyte Live-Cell Analysis

Real-time, non-invasive monitoring of cell growth, morphology, viability, and proliferation using automated live-cell imaging including co-culture and cytotoxicity assays as well as a wide range of cell-based functional in vitro assays for evaluating cell behavior, interactions, and treatment responses.

Immunomonitoring

  • Dr. Sebastian Attig

    Head of Functional Unit Immunomonitoring

Using descriptive and functional assays based on multi-parametric Flow Cytometry (conventional and spectral), ELISpot and CITE-Seq/AB-Seq to generate high-quality and aim-driven results.

Our activities and competences

Our methods and platforms

Flow Cytometry

Using defined marker sets of fluorochrome labeled reagents to analyze and characterize (immune) cells and subsets. Multimer-Staining allows us to identify antigen-specific T cells and further phenotyping of these cells, whereas Intracellular Staining (IC) are used to address the cytokine/chemokine/interleukin profiling of cells as well as staining for e.g. transcription factors.

CITE-Seq/AB-Seq

Using oligo-tagged reagents an extended maker-pattern could be investigated allowing to even more deeply investigate samples. Besides proteomics this method allows targeted and whole transcriptomic analysis. This is especially of interest, if sample material is limited and/or leading markers are missing.

ELISpot

Screening samples been stimulated to profile immune responses against multiple targets using membrane bound antibodies by an enzyme-substrate reaction. This method is optimal for more high-through put and target evaluation screening

Publications

Triple-negative breast cancer (TNBC) is frequently associated with metastatic relapse, even at an early stage1. Here we assessed an individualized neoantigen mRNA vaccine in 14 patients with TNBC following surgery and after neoadjuvant or adjuvant therapy. In peripheral blood of nearly all patients, high-magnitude, vaccine-induced, mostly de novo T cell responses to multiple neoantigens were detected that remained functional for several years. Characterization of individual patients revealed that a large proportion of these T cells developed into two subsets: a late-differentiated phenotype with markers indicative of ‘ready-to-act’ cytotoxic effector T cells, and T cells with a stem cell-like memory phenotype. Eleven patients remained relapse-free for up to six years post-vaccination. Recurrence occurred in three patients: the individual with the weakest vaccine-induced T cell response relapsed, but achieved complete remission on subsequent anti-PD-1 therapy; another patient had a tumour with low major histocompatibility complex (MHC) class I expression with MHC class I-deficient cells growing out under vaccination; and the third patient was BRCA-positive and had a recurrence from a genetically distinct primary tumour. These findings demonstrate the feasibility of individualized RNA vaccines in TNBC, document persistence of vaccine-induced, functional neoantigen-specific T cells and provide insights into possible immune escape mechanisms that will guide future approaches.

Results from the first gating proficiency panel of intracellular cytokine staining (ICS) highlighted the value of using a consensus gating approach to reduce the variability across laboratories in reported %CD8+ or %CD4+ cytokine-positive cells. Based on the data analysis from the first proficiency panel, harmonization guidelines for a consensus gating protocol were proposed. To validate the recommendations from the first panel and to examine factors that were not included in the first panel, a second ICS gating proficiency panel was organized. All participants analyzed the same set of Flow Cytometry Standard (FCS) files using their own gating protocol. An optional learning module was provided to demonstrate how to apply the previously established gating recommendations and harmonization guidelines to actual ICS data files. Eighty-three participants took part in this proficiency panel. The results from this proficiency panel confirmed the harmonization guidelines from the first panel. These recommendations addressed the (1) placement of the cytokine-positive gate, (2) identification of CD4+ CD8+ double-positive T cells, (3) placement of lymphocyte gate, (4) inclusion of dim cells, (5) gate uniformity, and (6) proper adjustment of the biexponential scaling. In addition, based on the results of this proficiency gating panel, two new recommendations were added to expand the harmonization guidelines: (1) inclusion of dump channel marker to gate all live and dump negative cells and (2) backgating to confirm the correct placement of gates across all populations. © 2020 International Society for Advancement of Cytometry.

Treating patients who have cancer with vaccines that stimulate a targeted immune response is conceptually appealing, but cancer vaccine trials have not been successful in late-stage patients with treatment-refractory tumours1,2. We are testing melanoma FixVac (BNT111)—an intravenously administered liposomal RNA (RNA-LPX) vaccine, which targets four non-mutated, tumour-associated antigens that are prevalent in melanoma—in an ongoing, first-in-human, dose-escalation phase I trial in patients with advanced melanoma (Lipo-MERIT trial, ClinicalTrials.gov identifier NCT02410733). We report here data from an exploratory interim analysis that show that melanoma FixVac, alone or in combination with blockade of the checkpoint inhibitor PD1, mediates durable objective responses in checkpoint-inhibitor (CPI)-experienced patients with unresectable melanoma. Clinical responses are accompanied by the induction of strong CD4+ and CD8+ T cell immunity against the vaccine antigens. The antigen-specific cytotoxic T-cell responses in some responders reach magnitudes typically reported for adoptive T-cell therapy, and are durable. Our findings indicate that RNA-LPX vaccination is a potent immunotherapy in patients with CPI-experienced melanoma, and suggest the general utility of non-mutant shared tumour antigens as targets for cancer vaccination.

T cells directed against mutant neo-epitopes drive cancer immunity. However, spontaneous immune recognition of mutations is inefficient. We recently introduced the concept of individualized mutanome vaccines and implemented an RNA-based poly-neo-epitope approach to mobilize immunity against a spectrum of cancer mutations. Here we report the first-in-human application of this concept in melanoma. We set up a process comprising comprehensive identification of individual mutations, computational prediction of neo-epitopes, and design and manufacturing of a vaccine unique for each patient. All patients developed T cell responses against multiple vaccine neo-epitopes at up to high single-digit percentages. Vaccine-induced T cell infiltration and neo-epitope-specific killing of autologous tumour cells were shown in post-vaccination resected metastases from two patients. The cumulative rate of metastatic events was highly significantly reduced after the start of vaccination, resulting in a sustained progression-free survival. Two of the five patients with metastatic disease experienced vaccine-related objective responses. One of these patients had a late relapse owing to outgrowth of β2-microglobulin-deficient melanoma cells as an acquired resistance mechanism. A third patient developed a complete response to vaccination in combination with PD-1 blockade therapy. Our study demonstrates that individual mutations can be exploited, thereby opening a path to personalized immunotherapy for patients with cancer.

Lymphoid organs, in which antigen presenting cells (APCs) are in close proximity to T cells, are the ideal microenvironment for efficient priming and amplification of T-cell responses. However, the systemic delivery of vaccine antigens into dendritic cells (DCs) is hampered by various technical challenges. Here we show that DCs can be targeted precisely and effectively in vivo using intravenously administered RNA-lipoplexes (RNA-LPX) based on well-known lipid carriers by optimally adjusting net charge, without the need for functionalization of particles with molecular ligands. The LPX protects RNA from extracellular ribonucleases and mediates its efficient uptake and expression of the encoded antigen by DC populations and macrophages in various lymphoid compartments. RNA-LPX triggers interferon-α (IFNα) release by plasmacytoid DCs and macrophages. Consequently, DC maturation in situ and inflammatory immune mechanisms reminiscent of those in the early systemic phase of viral infection are activated. We show that RNA-LPX encoding viral or mutant neo-antigens or endogenous self-antigens induce strong effector and memory T-cell responses, and mediate potent IFNα-dependent rejection of progressive tumours. A phase I dose-escalation trial testing RNA-LPX that encode shared tumour antigens is ongoing. In the first three melanoma patients treated at a low-dose level, IFNα and strong antigen-specific T-cell responses were induced, supporting the identified mode of action and potency. As any polypeptide-based antigen can be encoded as RNA, RNA-LPX represent a universally applicable vaccine class for systemic DC targeting and synchronized induction of both highly potent adaptive as well as type-I-IFN-mediated innate immune mechanisms for cancer immunotherapy.