18 research outputs found

    Characterization of a Y-Family DNA Polymerase eta from the Eukaryotic Thermophile Alvinella pompejana

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    Human DNA polymerase η (HsPolη) plays an important role in translesion synthesis (TLS), which allows for replication past DNA damage such as UV-induced cis-syn cyclobutane pyrimidine dimers (CPDs). Here, we characterized ApPolη from the thermophilic worm Alvinella pompejana, which inhabits deep-sea hydrothermal vent chimneys. ApPolη shares sequence homology with HsPolη and contains domains for binding ubiquitin and proliferating cell nuclear antigen. Sun-induced UV does not penetrate Alvinella's environment; however, this novel DNA polymerase catalyzed efficient and accurate TLS past CPD, as well as 7,8-dihydro-8-oxoguanine and isomers of thymine glycol induced by reactive oxygen species. In addition, we found that ApPolη is more thermostable than HsPolη, as expected from its habitat temperature. Moreover, the activity of this enzyme was retained in the presence of a higher concentration of organic solvents. Therefore, ApPolη provides a robust, human-like Polη that is more active after exposure to high temperatures and organic solvents

    XPD Helicase Structures and Activities: Insights into the Cancer and Aging Phenotypes from XPD Mutations

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    Mutations in XPD helicase, required for nucleotide excision repair (NER) as part of the transcription/repair complex TFIIH, cause three distinct phenotypes: cancer-prone xeroderma pigmentosum (XP), or aging disorders Cockayne syndrome (CS), and trichothiodystrophy (TTD). To clarify molecular differences underlying these diseases, we determined crystal structures of the XPD catalytic core from Sulfolobus acidocaldarius and measured mutant enzyme activities. Substrate-binding grooves separate adjacent Rad51/RecA-like helicase domains (HD1, HD2) and an arch formed by 4FeS and Arch domains. XP mutations map along the HD1 ATP-binding edge and HD2 DNA-binding channel and impair helicase activity essential for NER. XP/CS mutations both impair helicase activity and likely affect HD2 functional movement. TTD mutants lose or retain helicase activity but map to sites in all four domains expected to cause framework defects impacting TFIIH integrity. These results provide a foundation for understanding disease consequences of mutations in XPD and related 4Fe-4S helicases including FancJ

    Who Provides Primary Care? An Assessment of HIV Patient and Provider Practices and Preferences.

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    Non-AIDS co-morbidities are emerging as the main health problems for those living with HIV, and primary care for this population is an evolving challenge. Recent studies have raised the question of whether specialists or generalists are best suited to provide HIV primary care, but patients' actual usage patterns and the preferences of patients and providers have not been well studied. We anonymously surveyed 98 patients and eight HIV-specialized providers regarding primary care usage patterns and preferences at an academic HIV clinic in Los Angeles that serves insured patients. Fifty-nine percent of patients use their HIV physician as their primary care provider, and 84% would prefer this model. Physicians were divided on their preferred role, with five out of eight desiring to provide both primary care and HIV care. All eight physicians rated their comfort with antiretroviral therapy and opportunistic infections greater than for non-AIDS co-morbidities. Eighty-one percent of patients and seven of eight providers were supportive of having a co-located primary care physician at the HIV clinic. We conclude that patients prefer integration of HIV and primary care, but providers have variable desire to serve as primary care physicians and may be uncomfortable with non-AIDS co-morbidities. This raises the need for improved patient-provider communication about primary care needs, and calls for novel ways of systematically providing primary care to HIV-infected patients

    NF-κB dynamics determine the stimulus specificity of epigenomic reprogramming in macrophages

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    The epigenome of macrophages can be reprogrammed by extracellular cues, but the extent to which different stimuli achieve this is unclear. Nuclear factor κB (NF-κB) is a transcription factor that is activated by all pathogen-associated stimuli and can reprogram the epigenome by activating latent enhancers. However, we show that NF-κB does so only in response to a subset of stimuli. This stimulus specificity depends on the temporal dynamics of NF-κB activity, in particular whether it is oscillatory or non-oscillatory. Non-oscillatory NF-κB opens chromatin by sustained disruption of nucleosomal histone-DNA interactions, enabling activation of latent enhancers that modulate expression of immune response genes. Thus, temporal dynamics can determine a transcription factor's capacity to reprogram the epigenome in a stimulus-specific manner
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