Publications by authors named "Hemann M"

CAR T cell therapy has revolutionized the treatment of a spectrum of blood-related malignancies. However, treatment responses vary among cancer types and patients. Accurate monitoring of CAR T cell dynamics is crucial for understanding and evaluating treatment efficacy.

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Background: Integrating molecular-targeted agents into combination chemotherapy is transformative for enhancing treatment outcomes in cancer. However, realizing the full potential of this approach requires a clear comprehension of the genetic dependencies underlying drug synergy. While the interactions between conventional chemotherapeutics are well-explored, the interplay of molecular-targeted agents with conventional chemotherapeutics remains a frontier in cancer treatment.

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There are hundreds of genes typically overexpressed in breast cancer cells and it's often assumed that their overexpression contributes to cancer progression. However, the precise proportion of these overexpressed genes contributing to tumorigenicity remains unclear. To address this gap, we undertook a comprehensive screening of a diverse set of seventy-two genes overexpressed in breast cancer.

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Results from a needs assessment conducted by nursing professional development practitioners across several clinics in the Midwest showed current educational methods to prepare for medical emergencies were insufficient. A champion model was used to complete in situ medical emergency response simulations. This proved to be an effective method for staff preparation when resources were limited and identified opportunities for practice improvement.

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Leukemias and their bone marrow microenvironments undergo dynamic changes over the course of disease. However, little is known about the circulation kinetics of leukemia cells, nor the impact of specific factors on the clearance of circulating leukemia cells (CLCs) from the blood. To gain a basic understanding of CLC dynamics over the course of disease progression and therapeutic response, we apply a blood exchange method to mouse models of acute leukemia.

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Constitutional trisomy 21 (T21) is a state of aneuploidy associated with high incidence of childhood acute myeloid leukemia (AML). T21-associated AML is preceded by transient abnormal myelopoiesis (TAM), which is triggered by truncating mutations in GATA1 generating a short GATA1 isoform (GATA1s). T21-associated AML emerges due to secondary mutations in hematopoietic clones bearing GATA1s.

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Article Synopsis
  • CAR-T therapy shows promise for treating B-cell malignancies, but many patients experience relapses due to mechanisms like loss of CAR-T cells and antigen escape.* ! -
  • Researchers used CRISPR-Cas9 in a mouse model of B-ALL to discover that IFNγR/JAK/STAT signaling and antigen processing pathways contribute to resistance against CAR-T therapy.* ! -
  • The study found that increased expression of these pathways in relapsed tumors is linked to poor outcomes in B-ALL patients, highlighting the role of the tumor microenvironment, including natural killer cells, in inducing resistance mechanisms.* !
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Rev7 is a regulatory protein with roles in translesion synthesis (TLS), double strand break (DSB) repair, replication fork protection, and cell cycle regulation. Rev7 forms a homodimer in vitro using its HORMA (Hop, Rev7, Mad2) domain; however, the functional importance of Rev7 dimerization has been incompletely understood. We analyzed the functional properties of cells expressing either wild-type mouse Rev7 or Rev7, a mutant that cannot dimerize.

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The rational combination of anticancer agents is critical to improving patient outcomes in cancer. Nonetheless, most combination regimens in the clinic result from empirical methodologies disregarding insight into the mechanism of action and missing the opportunity to improve therapy outcomes incrementally. Deciphering the genetic dependencies and vulnerabilities responsible for synergistic interactions is crucial for rationally developing effective anticancer drug combinations.

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Article Synopsis
  • The study examines the dynamics of circulating leukemia cells (CLCs) in mouse models, focusing on how these cells behave throughout disease progression and treatment responses.
  • It finds that CLCs stay in the bloodstream significantly longer than circulating tumor cells from solid tumors, and notes that the bone marrow's leukemia presence affects CLC clearance in specific models.
  • The research also indicates that microenvironmental factors, such as E-selectin, can influence CLC clearance rates, which varies depending on tumor status and treatment outcomes.
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Whole chromosome losses resulting in near-haploid karyotypes are found in a rare subgroup of treatment-refractory acute lymphoblastic leukemia. To systematically dissect the unique physiology and uncover susceptibilities that can be exploited in near-haploid leukemia, we leveraged single-cell RNA-Seq and computational inference of cell cycle stages to pinpoint key differences between near-haploid and diploid leukemia cells. Combining cell cycle stage-specific differential expression with gene essentiality scores from a genome-wide CRISPR-Cas9-mediated knockout screen, we identified the homologous recombination pathway component RAD51B as an essential gene in near-haploid leukemia.

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The immunostimulatory intracellular domains (ICDs) of chimaeric antigen receptors (CARs) are essential for converting antigen recognition into antitumoural function. Although there are many possible combinations of ICDs, almost all current CARs rely on combinations of CD3𝛇, CD28 and 4-1BB. Here we show that a barcoded library of 700,000 unique CD19-specific CARs with diverse ICDs cloned into lentiviral vectors and transduced into Jurkat T cells can be screened at high throughput via cell sorting and next-generation sequencing to optimize CAR signalling for antitumoural functions.

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Chemotherapy resistance is a major obstacle to curing cancer patients. Combination drug regimens have shown promise as a method to overcome resistance; however, to date only some cancers have been cured with this method. Collateral sensitivity-the phenomenon whereby resistance to one drug is co-occurrent with sensitivity to a second drug-has been gaining traction as a promising new concept to guide rational design of combination regimens.

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Cytotoxic chemotherapeutics primarily function through DNA damage-induced tumor cell apoptosis, although the inflammation provoked by these agents can stimulate anti-cancer immune responses. The mechanisms that control these distinct effects and limit immunogenic responses to DNA-damage mediated cell death in vivo are currently unclear. Using a mouse model of BCR-ABL B-cell acute lymphoblastic leukemia, we show that chemotherapy-induced anti-cancer immunity is suppressed by the tumor microenvironment through production of the cytokine IL-6.

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Nurse managers play an important role in supporting preceptors and new hires. Unless a nurse manager had previous experience and preparation as a preceptor, they may not fully understand the role nor have the foundational knowledge needed to support preceptors and new hires throughout orientation. Educating nurse managers on preceptor core skills had a positive impact and added value to their practice.

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Epigenetic regulators play key roles in cancer and are increasingly being targeted for treatment. However, for many, little is known about mechanisms of resistance to the inhibition of these regulators. We have generated a model of resistance to inhibitors of protein arginine methyltransferase 5 (PRMT5).

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Reactivation of p53 in established tumors typically results in one of two cell fates, cell cycle arrest or apoptosis, but it remains unclear how this cell fate is determined. We hypothesized that high mitochondrial priming prior to p53 reactivation would lead to apoptosis, while low priming would lead to survival and cell cycle arrest. Using a panel of Kras-driven, p53 restorable cell lines derived from genetically engineered mouse models of lung adenocarcinoma and sarcoma (both of which undergo cell cycle arrest upon p53 restoration), as well as lymphoma (which instead undergo apoptosis), we show that the level of mitochondrial apoptotic priming is a critical determinant of p53 reactivation outcome.

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The COVID-19 pandemic emphasized the importance of preparing nursing staff at healthcare organizations to adequately respond and care for the influx of patients infected with the virus. Training redeployed nursing staff on equipment basics of acute care nursing while following social distancing guidelines posed a challenge. A skills practice laboratory was implemented utilizing a self-learning methodology while adhering to social distancing guidelines.

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Article Synopsis
  • Cancer cells adapt to stress, creating weaknesses that can be targeted; a study found that VCP, a stress-related protein, is particularly vulnerable in acute myeloid leukemia (AML).
  • The research showed that AML is the most sensitive cancer type to VCP inhibition, validated through various models and techniques.
  • A new VCP inhibitor, CB-5339, was developed and shown to effectively work with DNA-damaging drugs like anthracyclines, supporting its potential for clinical testing in AML treatment.
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  • Triple-negative breast cancer (TNBC) lacks targeted therapies, and about 70% of patients experience treatment resistance often due to abnormal mitochondrial apoptosis signaling.
  • Researchers conducted a phenotypic small-molecule screen and discovered a compound called BAS-2 that operates similarly to histone deacetylase inhibitors (HDAC).
  • BAS-2 was found to selectively inhibit HDAC6, leading to the identification of its new role in regulating glycolytic metabolism in TNBC cells through advanced mass spectrometry techniques.
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Background And Aims: Hepatocellular carcinoma (HCC) is among the most common cancer types worldwide, yet patients with HCC have limited treatment options. There is an urgent need to identify drug targets that specifically inhibit the growth of HCC cells.

Approach And Results: We used a CRISPR library targeting ~2,000 druggable genes to perform a high-throughput screen and identified adenylosuccinate lyase (ADSL), a key enzyme involved in the de novo purine synthesis pathway, as a potential drug target for HCC.

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REV1/POLζ-dependent mutagenic translesion synthesis (TLS) promotes cell survival after DNA damage but is responsible for most of the resulting mutations. A novel inhibitor of this pathway, JH-RE-06, promotes cisplatin efficacy in cancer cells and mouse xenograft models, but the mechanism underlying this combinatorial effect is not known. We report that, unexpectedly, in two different mouse xenograft models and four human and mouse cell lines we examined in vitro cisplatin/JH-RE-06 treatment does not increase apoptosis.

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Cisplatin is a standard of care for lung cancer, yet platinum therapy rarely results in substantial tumor regression or a dramatic extension in patient survival. Here, we examined whether targeting Rev7 (also referred to as Mad2B, Mad2L2, and FANCV), a component of the translesion synthesis (TLS) machinery, could potentiate the action of cisplatin in non-small cell lung cancer (NSCLC) treatment. Rev7 loss led to an enhanced tumor cell sensitivity to cisplatin and dramatically improved chemotherapeutic response in a highly drug-resistant mouse model of NSCLC.

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