Ataxia–telangiectasia (A-T) is a pleiotropic genome instability syndrome resulting from the loss of the homeostatic protein kinase ATM. The complex phenotype of A-T includes progressive cerebellar degeneration, immunodeficiency, gonadal atrophy, interstitial lung disease, cancer predisposition, endocrine abnormalities, chromosomal instability, radiosensitivity, and segmental premature aging. Cultured skin fibroblasts from A-T patients exhibit premature senescence, highlighting the association between genome instability, cellular senescence, and aging. We found that lung fibroblasts derived from ATM-deficient mice provide a versatile experimental system to explore the mechanisms driving the premature senescence of primary fibroblasts lacking ATM. Atm −/− fibroblasts failed to proliferate under ambient oxygen conditions (21%). Although they initially proliferated under physiological oxygen levels (3%), they rapidly entered senescence. In contrast, wild-type (WT) lung fibroblasts did not senesce under 3% oxygen and eventually underwent immortalization and neoplastic transformation. However, rapid senescence could be induced in WT cells either by Atm gene ablation or persistent chemical inhibition of ATM kinase activity, with senescence induced by ATM inhibition being reversible upon inhibitor removal. Moreover, the concomitant loss of ATM and p53 led to senescence evasion, vigorous growth, rampant genome instability, and subsequent immortalization and transformation. Our findings reveal that the rapid senescence of Atm −/− lung fibroblasts is driven by the collaborative action of the cGAS–STING, p38 MAPK, and p53 pathways in response to persistent DNA damage, ultimately leading to the induction of interferon-α1 and downstream interferon-stimulated genes. We propose that accelerated cellular senescence may exacerbate specific A-T symptoms, particularly contributing to the progressive, life-threatening interstitial lung disease often observed in A-T patients during adulthood.
Cellular senescence plays a significant role in tissue aging. Senescent cells, which resist apoptosis while remaining metabolically active, generate endogenous DNA-damaging agents, primarily reactive oxygen species. Efficient DNA repair is therefore crucial in these cells, especially when they undergo senescence escape, resuming DNA replication and cellular proliferation. To investigate whether senescent cell transcriptomes reflect adequate DNA repair capacity, we conducted a comprehensive meta-analysis of 60 transcriptomic datasets comparing senescent to proliferating cells. Our analysis revealed a striking downregulation of genes encoding essential components across DNA repair pathways in senescent cells. This includes pathways active in different cell cycle phases such as nucleotide excision repair, base excision repair, nonhomologous end joining and homologous recombination repair of double-strand breaks, mismatch repair and interstrand crosslink repair. The downregulation observed suggests a significant accumulation of DNA lesions. Experimental monitoring of DNA repair readouts in cells that underwent radiation-induced senescence supported this conclusion. This phenomenon was consistent across various senescence triggers and was also observed in primary cell lines from aging individuals. These findings highlight the potential of senescent cells as 'ticking bombs' in aging-related diseases and tumors recurring following therapy-induced senescence.
Cellular plasticity mediates tissue development as well as cancer growth and progression. In breast cancer, a shift to a more epithelial phenotype (epithelialization) underlies a state of reversible cell growth arrest called tumor dormancy, which enables drug resistance, tumor recurrence, and metastasis. Here, we explored the mechanisms driving epithelialization and dormancy in aggressive mesenchymal-like breast cancer cells in three-dimensional cultures. Overexpressing either of the epithelial lineage-associated transcription factors OVOL1 or OVOL2 suppressed cell proliferation and migration and promoted transition to an epithelial morphology. The expression of OVOL1 (and of OVOL2 to a lesser extent) was regulated by steroid hormones and growth factors and was more abundant in tumors than in normal mammary cells. An uncharacterized and indirect target of OVOL1/2, C1ORF116 , exhibited genetic and epigenetic aberrations in breast tumors, and its expression correlated with poor prognosis in patients. We further found that C1ORF116 was an autophagy receptor that directed the degradation of antioxidant proteins, including thioredoxin. Through C1ORF116 and unidentified mediators, OVOL1 expression dysregulated both redox homeostasis (in association with increased ROS, decreased glutathione, and redistribution of the transcription factor NRF2) and DNA damage and repair (in association with increased DNA oxidation and double-strand breaks and an altered interplay among the kinases p38-MAPK, ATM, and others). Because these effects, as they accumulate in cells, can promote metastasis and dormancy escape, the findings suggest that OVOLs not only promote dormancy entry and maintenance in breast cancer but also may ultimately drive dormancy exit and tumor recurrence.
The cellular networks that maintain genome stability encompass numerous pathways involved in all aspects of nucleic acid metabolism. Through bioinformatic analysis, we identified the Zinc Finger CCCH-Type Containing 4 protein (ZC3H4), a suppressor of noncoding RNA (ncRNA) production, as a pivotal player in this system. Experimentally, ZC3H4 deficiency led to increased DNA damage, abnormal mitosis, and cellular senescence. Biochemical analysis and super-resolution microscopy revealed that the loss of ZC3H4 increased replication stress (RS)-a major driver of genome instability-by inducing a hypertranscription state that promoted R loop formation and transcription-replication conflicts (TRCs), both of which drive RS. Further bioinformatic analysis demonstrated that ZC3H4 preferentially binds to genomic regions prone to TRCs and R loops, where it suppresses ncRNA bursts, functioning as part of the Restrictor complex. Our findings identify ZC3H4 as a crucial factor in maintaining genome integrity, strategically positioned at the critical intersection of DNA and RNA synthesis.
Ataxia-telangiectasia (A-T) is an autosomal-recessive disorder caused by pathogenic variants (PVs) of the ATM gene. Children with A-T are predisposed to hematological malignancies. We aimed to investigate their characteristics and outcomes in order to generate data-based treatment recommendations. In this multinational, observational study we report 202 patients aged ≤25 years with A-T and hematological malignancies from 25 countries. Ninety-one patients (45%) presented with mature B-cell lymphomas, 82 (41%) with acute lymphoblastic leukemia/lymphoma, 21(10%) with Hodgkin lymphoma and eight (4%) with other hematological malignancies. Four-year overall survival and event-free survival (EFS) were 50.8% (95% CI 43.6-59.1) and 47.9% (95% CI 40.8-56.2), respectively. Cure rates have not significantly improved over the last four decades (p=.76). The major cause of treatment failure was treatment-related mortality (TRM) with a four-year cumulative incidence of 25.9% (95% CI 19.5-32.4). Germline ATM PVs were categorized as null or hypomorphic and patients with available genetic data (n=110) were classified as having absent (n=81) or residual (n=29) ATM kinase activity. Four-year EFS was 39.4% (95% CI 29-53.3) vs 78.7% (95% CI 63.7-97.2), (p<.001), and TRM rates were 37.6% (95% CI 26.4-48.7) vs 4.0% (95% CI 0-11.8), (p=.017), for those with absent and residual ATM kinase activity, respectively. Absence of ATM kinase activity was independently associated with decreased EFS (HR=0.362, 95% CI 0.16-0.82; p=.009) and increased TRM (HR=14.11, 95% CI 1.36-146.31; p=.029). Patients with A-T and leukemia/lymphoma may benefit from de-escalated therapy for patients with absent ATM kinase activity and near-standard therapy regimens for those with residual kinase activity.
Introduction Ataxia telangiectasia (A-T) is a multisystem disorder caused by biallelic germline pathogenic variants (PV) in the ATM gene. An important feature of A-T is an increased predisposition to cancer with a reported incidence of 25%, primarily attributed to hematological malignancies. Patients with A-T and cancer are usually excluded from therapeutic clinical trials, limited information thus exists concerning their treatment outcomes and toxicity profiles and consequently, optimal management strategies are unclear and an unmet need. In this multinational study, we aimed to investigate the characteristics and outcomes of leukemia and lymphoma in a large cohort of children with A-T and to determine risk factors which impact treatment outcome in order to generate consensus and data-based prospective treatment recommendations. Methods This study of patients aged ≤25 years with A-T and hematological malignancies was conducted through the International BFM Study Group. Patient data were collected from medical records, including specific patient comorbidities. Each reported ATM PV identified in the cohort was classified as null (resulting in complete loss of ATM activity) or hypomorphic (allowing residual ATM activity) according to the expected functional activity of the ATM protein and published functional studies. Patients with reported ATM PV were then classified as Group A (two null PV) or Group B (at least one hypomorphic PV). Results We report 202 pediatric and adolescent/young adult patients with A-T and hematological malignancies from 25 countries. The cohort included 82 patients with ALL/LBL (41%), predominantly (85%) of T-cell lineage, 91 with mature B-cell lymphomas (45%), 21 with Hodgkin lymphoma (10%) and 8 with other hematological malignancies (4%) (Fig 1). Of 111 patients with classifiable germline ATM variants, 82 (74%) were classified as Group A and 29 as Group B (26%). The distribution of patients with Group A and Group B germline ATM PV differed considerably between tumor types with 44% of the patients with lymphoblastic leukemia/lymphoma classified as Group B vs. 5% of those with mature B cell lymphomas ( p<.001). In total, 185 patients (92%) treated with curative intent were included in the outcome analyses, 135 (73%) of whom were treated with attenuated therapy regimens. Four-year OS and EFS for the entire cohort were 50.8% (95% CI 43.6-59.1) and 47.9% (95% CI 40.8-56.2), respectively. Surprisingly, cure rates of patients with A-T and malignancy did not appear to improve significantly with therapy modernization over the last four decades with 4-year EFS rates of 41.6% (95% CI 26.6-65), 49.6% (95% CI 38.8-63.4) and 48.0% (95% CI 37.4-61.7) for those treated before 2000, between 2000-2009 and since 2010, respectively ( p=.54). The major cause of treatment failure for the entire cohort was treatment-related mortality (TRM) with a 4-year cumulative incidence of 32.8% (95% CI 19.5-32.4), followed by progressive cancer in 14.5% (95% CI 10-19.8) and second malignancy in 4.9% (95% CI 13.1-85.8) (Fig 2). We identified factors that were significantly associated with survival for this unique patient population. Older age had a significantly deleterious effect upon survival with 4-year EFS rates of 69.1% (95%CI 55.9-85.4), 45.3% (95% CI 34.5-59.4), 39.8% (95% CI 25-63.2), and 33.7% (95% CI 20.8-54.6) for children aged ≤5 years, 5-10 years, 10-15 years and ≥15 years, respectively ( p=.003). The type of germline ATM PV also had a significant impact: 4-year EFS for patients with Group B ATM PV was 78.7% (95% CI 63.7-97.2) vs. 39.4% (95% CI 29-53.3) for Group A ( p<.001). Group A PV were associated with an increased TRM (OR 9.3; 95% CI 1.6-180.1; p=.042) and decreased EFS (HR .371 95% CI 16.6-82.6; p=.009). Conclusions We demonstrate in this first comprehensive international study that leukemia and lymphoma in children with A-T are curable. While the standard treatment stratification system for patients with hematological malignancies without A-T focuses upon cancer relapse/progression as the main cause of treatment failure, TRM was the main cause of therapy failure in patients with A-T and was strongly associated with the underlying germline ATM variant type. This study further fulfills an unmet need for international collaboration and provides a platform for data-based guidelines for a novel risk stratification system and optimal therapy selection for this unique patient population.
The genetic disorder, ataxia-telangiectasia (A-T), is caused by loss of the homeostatic protein kinase, ATM, and combines genome instability, tissue degeneration, cancer predisposition, and premature aging. Primary fibroblasts from A-T patients exhibit premature senescence when grown at ambient oxygen concentration (21%). Here, we show that reducing oxygen concentration to a physiological level range (3%) dramatically extends the proliferative lifespan of human A-T skin fibroblasts. However, they still undergo senescence earlier than control cells grown under the same conditions and exhibit high genome instability. Comparative RNA-seq analysis of A-T and control fibroblasts cultured at 3% oxygen followed by cluster analysis of differentially expressed genes and functional enrichment analysis, revealed distinct transcriptional dynamics in A-T fibroblasts senescing in physiological oxygen concentration. While some transcriptional patterns were similar to those observed during replicative senescence of control cells, others were unique to the senescing A-T cells. We observed in them a robust activation of interferon-stimulated genes, with undetected expression the interferon genes themselves. This finding suggests an activation of a non-canonical cGAS-STING-mediated pathway, which presumably responds to cytosolic DNA emanating from extranuclear micronuclei detected in these cells. Senescing A-T fibroblasts also exhibited a marked, intriguely complex alteration in the expression of genes associated with extracellular matrix (ECM) remodeling. Notably, many of the induced ECM genes encode senescence-associated secretory phenotype (SASP) factors known for their paracrine pro-fibrotic effects. Our data provide a molecular dimension to the segmental premature aging observed in A-T patients and its associated symptoms, which develop as the patients advance in age.
Skin pigmentation is paused after sun exposure; however, the mechanism behind this pausing is unknown. In this study, we found that the UVB-induced DNA repair system, led by the ataxia telangiectasia mutated (ATM) protein kinase, represses MITF transcriptional activity of pigmentation genes while placing MITF in DNA repair mode, thus directly inhibiting pigment production. Phosphoproteomics analysis revealed ATM to be the most significantly enriched pathway among all UVB-induced DNA repair systems. ATM inhibition in mouse or human skin, either genetically or chemically, induces pigmentation. Upon UVB exposure, MITF transcriptional activation is blocked owing to ATM-dependent phosphorylation of MITF on S414, which modifies MITF activity and interactome toward DNA repair, including binding to TRIM28 and RBBP4. Accordingly, MITF genome occupancy is enriched in sites of high DNA damage that are likely repaired. This suggests that ATM harnesses the pigmentation key activator for the necessary rapid, efficient DNA repair, thus optimizing the chances of the cell surviving. Data are available from ProteomeXchange with the identifier PXD041121.
Ataxia-telangiectasia (A-T) is caused by absence of the catalytic activity of ATM, a protein kinase that plays a central role in the DNA damage response, many branches of cellular metabolism, redox and mitochondrial ho-meostasis, and cell cycle regulation. A-T is a complex disorder characterized mainly by progressive cerebellar degeneration, immunodeficiency, radiation sensitivity, genome instability, and predisposition to cancer. It is increasingly recognized that the premature aging component of A-T is an important driver of this disease, and A -T is therefore an attractive model to study the aging process. This review outlines the current state of knowledge pertaining to the molecular and cellular signatures of aging in A-T and proposes how these new insights can guide novel therapeutic approaches for A-T.
Ubiquilin-4 (UBQLN4) is a proteasomal shuttle factor that directly binds to ubiquitylated proteins and delivers its cargo to the 26S proteasome for degradation. We previously showed that upregulated UBQLN4 determines the DNA damage response (DDR) through the degradation of MRE11A. However, the regulatory mechanism at DNA level, transcriptionally and post-transcriptional levels that control UBQLN4 mRNA levels remains unknown. In this study, we screened 32 solid tumor types and validated our findings by immunohistochemistry analysis. UBQLN4 is upregulated at both mRNA and protein levels and the most significant values were observed in liver, breast, ovarian, lung, and esophageal cancers. Patients with high UBQLN4 mRNA levels had significantly poor prognoses in 20 of 32 cancer types. DNA amplification was identified as the main mechanism promoting UBQLN4 upregulation in multiple cancers, even in the early phases of tumor development. Using CRISPR screen datasets, UBQLN4 was identified as a common essential gene for tumor cell viability in 81.1% (860/1,060) of the solid tumor derived cell lines. Ovarian cancer cell lines with high UBQLN4 mRNA levels were platinum-based chemotherapy resistant, while they were more sensitive to poly (adenosine diphosphate-ribose) polymerase inhibitors (PARPi). Our findings highlight the utilities of UBQLN4 as a significant pan-cancer theranostic factor and a precision oncology biomarker for DDR-related drug resistance.
Background: Triple-negative breast cancer (TNBC) is a heterogeneous breast cancer (BC) subtype. Cisplatin is one of the broad FDA-approved drugs to treat TNBC patients with recurrent and unresectable disease. However the treatment response is limited, and patients frequently develop resistance and recur locally and distantly. The aim of this study is to find molecular mechanisms driving cisplatin-resistance in TNBC. The ubiquitin proteasomal system (UPS) is a universal and conserved mechanism that helps to maintain cellular homeostasis. The aberrant expression of certain components of the UPS have been associated with cancer onset, progression, and metastasis as we and other groups have shown. UBQLN4 is part of the UPS and play a major role in controlling ubiquitinated proteins in response to genotoxic stress. BCL2-associated athanogene-6 (BAG6), alternately known as BAT3, is a chaperone that complex with other chaperones and ubiquitin ligases to regulate protein stability and insertion of tail-anchored membrane proteins into the endoplasmic reticulum. This is a critical step that reduce mislocalized proteins and proteotoxic stress. We hypothesized that UBQLN4 upregulation determine cisplatin-resistance in BC patients by targeting BAT3 for proteasomal degradation to reduce proteotoxic stress. Methods: TCGA BRCA database was utilized to determine clinical associations and outcomes in BC patients. A BC tissue microarray (TMA) was stained by IHC and protein levels quantified to confirm associations between UBQLN4 and TNBC patients. TNBC cell lines were CRISPR-engineered to generate UBQLN4 knockout (KO), and lentivirus transduction was used to recover the KO phenotype. Functional assays and confocal imaging were performed in BRCA mutant and wildtype human TNBC cell lines. Results: Increased UBQLN4 mRNA expression was observed in the TCGA BRCA database in primary BC tissues compared to normal adjacent tissues (p<0.0001). Using PAM50 classification, the BC patients were stratified and compared for UBQLN4 expression. BC patients with basal-like tumors showed significantly higher UBQLN4 expression than normal-like subtype (p< 0.0001). In the assessment of 5-years relapse-free survival (RFS), patients with high levels of UBQLN4 (n=221) showed significantly lower RFS rates compared to those with low UBQLN4 (n=221) (HR=1.67(1.21-2.3), log-rank test p<0.0016). These results were further evaluated by IHC using a BC TMA. Patients with TNBC showed a significantly increased UBQLN4 H-scores values compared to normal adjacent breast tissues. KO of UBQLN4 significantly increased cisplatin sensitivity in TNBC cell lines (p<0.0001). UBQLN4 overexpression restored the cisplatin-resistance in UBQLN4-KO cell line. In TGCA BRCA database, BAT3 was significantly upregulated in BC patients with basal-like tumors compared to normal-like subtype. Knockdown of BAT3 significantly increased cisplatin sensitivity in TNBC cell lines (p<0.0001). In TCGA BRCA database, BAT3 and UBQLN4 mRNA levels positively correlated (r= 0.26, p<0.0001). By using co-immunoprecipitation, endogenous BAT3 and UBQLN4 proteins interact in parental TNBC cell line, but only during cisplatin-treatment. These results were further validated using reciprocal co-immunoprecipitation and confocal imaging in TNBC cell lines with UBQLN4 overexpression. Conclusions: UBQLN4 expression controls cisplatin-resistance in TNBC cell lines. UBLQN4 interacts with BAT3 under cisplatin treatment. During cisplatin treatment, UBQLN4 targets BAT3 for proteasomal degradation to reduce proteotoxic stress induced by genotoxic cisplatin treatment. The UBQLN4 protein levels may represent a prognostic biomarker to predict RFS in TNBC patients. Citation Format: Yoshiaki Shoji, Takamichi Yokoe, Peter J Bostick, Yosef Shiloh, Dave SB Hoon, Matias A Bustos. UBQLN4 regulates cisplatin-resistance in triple-negative breast cancer by targeting BAT3 for proteasomal degradation [abstract]. In: Proceedings of the 2021 San Antonio Breast Cancer Symposium; 2021 Dec 7-10; San Antonio, TX. Philadelphia (PA): AACR; Cancer Res 2022;82(4 Suppl):Abstract nr P4-01-11.
Genomic instability, telomere attrition, epigenetic alterations, mitochondrial dysfunction, loss of proteostasis, deregulated nutrient-sensing, cellular senescence, stem cell exhaustion, and altered intercellular communication were the original nine hallmarks of ageing proposed by López-Otín and colleagues in 2013. The proposal of these hallmarks of ageing has been instrumental in guiding and pushing forward research on the biology of ageing. In the nearly past 10 years, our in-depth exploration on ageing research has enabled us to formulate new hallmarks of ageing which are compromised autophagy, microbiome disturbance, altered mechanical properties, splicing dysregulation, and inflammation, among other emerging ones. Amalgamation of the 'old' and 'new' hallmarks of ageing may provide a more comprehensive explanation of ageing and age-related diseases, shedding light on interventional and therapeutic studies to achieve healthy, happy, and productive lives in the elderly.
To the Editor: Cisplatin is a platinum agent that causes DNA damage and it is used as a single agent or in combination for the treatment of recurrent/unresectable triple-negative breast cancer (TNBC).1 There is a renewed interest in cisplatin usage to treat TNBC in neoadjuvant/metastatic settings.2 Treatment options become limited when patients develop resistance, thus new insights into the molecular mechanisms driving cisplatin resistance will improve TNBC patient outcomes. The aim of this study is to unravel novel molecular mechanisms controlling STING protein levels during cisplatin treatment. We hypothesised that during cisplatininduced DNA damage, STING is recognised by UBQLN4, and degraded through the ubiquitin-proteasome system. UBQLN4 mRNA expression was analysed in the TCGA BRCA and GTEx datasets. UBQLN4 levels were significantly higher in primary TNBC tumours (Figure 1A,B). Patients with highUBQLN4mRNA levels had significantly reduced relapse-free survival (RFS) (Figure 1C). UBQLN4 gene is in the 1q22 region, and the amplification of the 1q arm is a frequent event in breast cancer (BC) and other solid tumours.3,4 UBQLN4 copy number variation (CNV) andmRNA levels showed a significant positive correlation in TNBC tumours and cell lines (Figure 1D,E). Immunohistochemistry analysis demonstrated significant elevated UBQLN4 protein levels for TNBC tumours (Figure 1F,G and Figure S1A). We have previously reported that UBQLN4 levels affect cisplatin sensitivity.5,6 UBQLN4 levels were associated with increased cisplatin resistance in TNBC cell lines (Figure 1H). UBQLN4 depletion did not induce significant transcriptional changes in TNBC cell lines (Figure S1B–F) or reduce cellular proliferation (Figure S1G-J); however, it increased the sensitivity to cisplatin, whereas UBQLN4-OV led to cisplatin resistance (Figure 1I–K). In summary, the UBQLN4 gene amplifica-
Resistance to standard cisplatin‐based chemotherapies leads to worse survival outcomes for patients with esophageal squamous cell carcinoma (ESCC). Therefore, there is an urgent need to understand the aberrant mechanisms driving resistance in ESCC tumors. We hypothesized that ubiquilin‐4 (UBQLN4), a protein that targets ubiquitinated proteins to the proteasome, regulates the expression of Meiotic Recombination 11 Homolog A (MRE11A), a critical component of the MRN complex and DNA damage repair pathways. Initially, immunohistochemistry analysis was conducted in specimens from patients with ESCC (n = 120). In endoscopic core ESCC biopsies taken from 61 patients who underwent neoadjuvant chemotherapy (NAC) (5‐fluorouracil and cisplatin), low MRE11A and high UBQLN4 protein levels were associated with reduced pathological response to NAC (P < 0.001 and P < 0.001, respectively). Multivariable analysis of surgically resected ESCC tissues from 59 patients revealed low MRE11A and high UBLQN4 expression as independent factors that can predict shorter overall survival [P = 0.01, hazard ratio (HR) = 5.11, 95% confidence interval (CI), 1.45–18.03; P = 0.02, HR = 3.74, 95% CI, 1.19–11.76, respectively]. Suppression of MRE11A expression was associated with cisplatin resistance in ESCC cell lines. Additionally, MRE11A was found to be ubiquitinated after cisplatin treatment. We observed an amplification of UBQLN4 gene copy numbers and an increase in UBQLN4 protein levels in ESCC tissues. Binding of UBQLN4 to ubiquitinated‐MRE11A increased MRE11A degradation, thereby regulating MRE11A protein levels following DNA damage and promoting cisplatin resistance. In summary, MRE11A and UBQLN4 protein levels can serve as predictors for NAC response and as prognostic markers in ESCC patients.
Abstract Platinum-based combination regimens are the standard of care to treat esophageal squamous cell carcinoma (ESCC) in both pre- and post-operative settings. Thus, resistance to cisplatin-based chemotherapies leads to worse survival outcomes in patients with ESCC. Therefore, there is an urgent need to understand aberrant mechanism driving cisplatin-resistance in ESCC. UBQLN4 is a proteasomal shuttle factor that interacts with ubiquitinated proteins and leads to proteasome-mediated protein degradation. We have recently demonstrated that UBQLN4 is highly expressed in solid aggressive tumors. However, the role of UBQLN4 in driving cisplatin-resistance in ESCC remains unknown. We hypothesize that UBQLN4 interacts with ubiquitinated-MRE11A, an essential component of the MRN complex and the DNA damage repairing pathway and thus, lead to cisplatin-resistance in ESCC tumors. In this study we demonstrated that MRE11A knockdown in ESCC cell lines reduced DNA damage and increased cisplatin-resistance, while MRE11A overexpression caused the opposite effects. MRE11A and UBQLN4 negatively correlated in TE-4, TE-8, and TE-10 cell lines. In established cisplatin-resistant ESCC cell lines (TE-8 and TE-10), MRE11A expression was significantly lower compared to their respective parental cell lines (p<0.01). UBQLN4 overexpression was associated with cisplatin-resistance in ESCC cell lines. Mechanistically, UBQLN4 bound to ubiquitinated MRE11A, enhanced MRE11A proteasomal degradation, and promoted cisplatin-resistance. Immunohistochemistry analysis was conducted in total 120 ESCC patients' specimens. In endoscopic core biopsies taken from 61 ESCC patients who underwent cisplatin-based neoadjuvant chemotherapy, low MRE11A and high UBQLN4 protein levels were associated with reduced pathological response to neoadjuvant chemotherapy (p<0.001 and p<0.001, respectively). Analysis of surgically-resected ESCC tissues from 59 patients who underwent upfront surgery and the following cisplatin-based adjuvant chemotherapy revealed that low MRE11A and high UBLQN4 expression were independent factors to predict shorter overall survival in multivariable analysis (p=0.02, HR=3.74, 95% C.I., 1.19-11.76; p=0.01, HR=5.11, 95% C.I., 1.45-18.03, respectively). In summary, UBQLN4 targets ubiquitinated-MRE11A to the proteasome for degradation during DNA damage induced by cisplatin in ESCC cell lines; thus, regulating MRE11A protein levels. MRE11A and UBQLN4 may serve as predictors for treatment response to cisplatin regimens and prognosis in ESCC patients. Citation Format: Tomohiro Murakami, Yoshiaki Shoji, Tomohiko Nishi, Shu-Ching Chang, Ron D. Jachimowicz, Yosef Shiloh, Hiroya Takeuchi, Yuko Kitagawa, Dave S. Hoon, Matias A. Bustos. MRE11A expression regulated by UBQLN4 is related to cisplatin-resistance and survival in patients with esophageal squamous cell carcinoma [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2021; 2021 Apr 10-15 and May 17-21. Philadelphia (PA): AACR; Cancer Res 2021;81(13_Suppl):Abstract nr LB218.
The DNA damage response is robustly activated by DNA double-strand breaks and controlled by three apical protein kinases of the PI3-kinase-related protein kinase (PIKK) family: ataxia-telangiectasia, mutated (ATM), ataxia-telangiectasia and Rad3-related (ATR) and DNA-dependent protein kinase (DNA-PK). Phosphoproteomic analysis reveals the relative share of these PIKKs in coordinating this network, and compensation by ATR and DNA-PK for ATM absence in the genetic disorder, ataxia-telangiectasia (A-T).
Light from a lab's windows and lamps illuminated the path to the discovery of DNA repair.
Research on the molecular pathology of genome instability disorders has advanced our understanding of the complex mechanisms that safeguard genome stability and cellular homeostasis at large. Once the culprit genes and their protein products are identified, an ongoing dialogue develops between the research lab and the clinic in an effort to link specific disease symptoms to the functions of the proteins that are missing in the patients. Ataxi A-T elangiectasia (A-T) is a prominent example of this process. A-T's hallmarks are progressive cerebellar degeneration, immunodeficiency, chronic lung disease, cancer predisposition, endocrine abnormalities, segmental premature aging, chromosomal instability and radiation sensitivity. The disease is caused by absence of the powerful protein kinase, ATM, best known as the mobilizer of the broad signaling network induced by double-strand breaks (DSBs) in the DNA. In parallel, ATM also functions in the maintenance of the cellular redox balance, mitochondrial function and turnover and many other metabolic circuits. An ongoing discussion in the A-T field revolves around the question of which ATM function is the one whose absence is responsible for the most debilitating aspect of A-T - the cerebellar degeneration. This review suggests that it is the absence of a comprehensive role of ATM in responding to ongoing DNA damage induced mainly by endogenous agents. It is the ensuing deterioration and eventual loss of cerebellar Purkinje cells, which are very vulnerable to ATM absence due to a unique combination of physiological features, which kindles the cerebellar decay in A-T.