R.A. Walters
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Also affiliated: Northern Illinois University (1972); Los Alamos National Laboratory (1968–1981); Los Alamos Medical Center (1968–1980); SUNY Brockport (2025); Colorado State University (1967)
Research Areas
Biomedical Subjects
Links
Biography and Research Information
OverviewAI-generated summary
R.A. Walters' research has focused on the study of mammalian cell radiosensitivity and the cell cycle, with particular attention to Chinese hamster cells. Investigations have explored the impact of radiation on DNA synthesis and the variations in deoxyribonucleoside triphosphate pools during different phases of the cell cycle. Research has also examined the sequential phosphorylation of histone subfractions in relation to cell cycle progression.
Further work has investigated mechanisms of cellular resistance, including the coordinate amplification of metallothionein I and II genes in cadmium-resistant Chinese hamster cells. This research contributes to understanding the regulation of metallothionein gene expression and its implications for cellular responses to toxic substances. Collaborations include work with researchers from the University of Arkansas for Medical Sciences and within the University of Arkansas at Fayetteville.
Metrics
- h-index: 21
- Publications: 51
- Citations: 1,539
Selected Publications
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Lung ultrasound feature tracking to quantify regional lung strain in mechanically ventilated pigs (2026)
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Transient MYC Mimicking the Exercise Response Orchestrates Multifaceted Skeletal Muscle Adaptations (2026)
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1717: NOVEL POINT-OF-CARE ULTRASOUND SPECKLE TRACKING APPROACH TO QUANTIFY REGIONAL LUNG STRAIN (2026)
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Development and testing of a novel point-of-care ultrasound based tool for quantifying local lung tissue strain (2026)
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The Skeletal Muscle Proteomic Signature of Long-Term Repeated Transient MYC Induction (2025)
Collaboration Network
Top Collaborators
- Development and testing of a novel point-of-care ultrasound based tool for quantifying local lung tissue strain
- 1717: NOVEL POINT-OF-CARE ULTRASOUND SPECKLE TRACKING APPROACH TO QUANTIFY REGIONAL LUNG STRAIN
- Lung ultrasound feature tracking to quantify regional lung strain in mechanically ventilated pigs
- Development and testing of a novel point-of-care ultrasound based tool for quantifying local lung tissue strain
- 1717: NOVEL POINT-OF-CARE ULTRASOUND SPECKLE TRACKING APPROACH TO QUANTIFY REGIONAL LUNG STRAIN
- Lung ultrasound feature tracking to quantify regional lung strain in mechanically ventilated pigs
- The Skeletal Muscle Proteomic Signature of Long-Term Repeated Transient MYC Induction
- Transient MYC Mimicking the Exercise Response Orchestrates Multifaceted Skeletal Muscle Adaptations
- The Skeletal Muscle Proteomic Signature of Long-Term Repeated Transient MYC Induction
- Transient MYC Mimicking the Exercise Response Orchestrates Multifaceted Skeletal Muscle Adaptations
- The Skeletal Muscle Proteomic Signature of Long-Term Repeated Transient MYC Induction
- Transient MYC Mimicking the Exercise Response Orchestrates Multifaceted Skeletal Muscle Adaptations
- Development and testing of a novel point-of-care ultrasound based tool for quantifying local lung tissue strain
- 1717: NOVEL POINT-OF-CARE ULTRASOUND SPECKLE TRACKING APPROACH TO QUANTIFY REGIONAL LUNG STRAIN
- The Skeletal Muscle Proteomic Signature of Long-Term Repeated Transient MYC Induction
- The Skeletal Muscle Proteomic Signature of Long-Term Repeated Transient MYC Induction
- 1717: NOVEL POINT-OF-CARE ULTRASOUND SPECKLE TRACKING APPROACH TO QUANTIFY REGIONAL LUNG STRAIN
- 1717: NOVEL POINT-OF-CARE ULTRASOUND SPECKLE TRACKING APPROACH TO QUANTIFY REGIONAL LUNG STRAIN
- Transient MYC Mimicking the Exercise Response Orchestrates Multifaceted Skeletal Muscle Adaptations
- Transient MYC Mimicking the Exercise Response Orchestrates Multifaceted Skeletal Muscle Adaptations
- Transient MYC Mimicking the Exercise Response Orchestrates Multifaceted Skeletal Muscle Adaptations
- Transient MYC Mimicking the Exercise Response Orchestrates Multifaceted Skeletal Muscle Adaptations
- Transient MYC Mimicking the Exercise Response Orchestrates Multifaceted Skeletal Muscle Adaptations
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