Alan E. Woessner
Affiliation confirmed via AI analysis of OpenAlex, ORCID, and web sources.
Research Associate
Research Areas
Biomedical Subjects
Links
Biography and Research Information
OverviewAI-generated summary
Alan E. Woessner's research focuses on studying skin structure, function, and wound healing, particularly in the context of aging and disease models. He has investigated age-related metabolic changes in skin wounds using in vivo multiphoton microscopy and has explored methods for quantifying collagen fiber organization in skin wounds through polarized light imaging. Woessner has also worked on developing improved segmentation techniques for collagen second harmonic generation images using deep learning convolutional neural networks. His work includes characterizing the neuro-regenerative behavior of adipose-derived stem cells in collagen hydrogels and developing a multicomponent microneedle patch for veterinary applications. He has a notable publication record, with 34 total publications and 512 citations, and an h-index of 10. Woessner frequently collaborates with researchers at the University of Arkansas at Fayetteville, including Kyle P. Quinn, Jin-Woo Kim, Patrick Kuczwara, and Jake D. Jones.
Metrics
- h-index: 10
- Publications: 31
- Citations: 512
Positions
-
Research Associate 2022–presentUniversity of Arkansas at Fayetteville Biomedical Engineering ORCID
Selected Publications
-
NADH FLIM reveals cellular bioenergetics and mitochondrial morphology during Drosophila convergent extension (2026)
-
In Vivo , Label-Free Multiphoton Microscopy Is Sensitive to Altered Metabolism and Structure in Aged Skin (2026)
-
Characterizing the role of mitochondrial dynamics during Drosophila convergent extension using NADH fluorescence lifetime imaging (2025)
-
A Multicomponent Microneedle Patch for the Delivery of Meloxicam for Veterinary Applications (2024)
-
A three-dimensional valve-on-chip microphysiological system implicates cell cycle progression, cholesterol metabolism and protein homeostasis in early calcific aortic valve disease progression (2024)
-
Identifying and training deep learning neural networks on biomedical-related datasets (2024)
-
Quantification of age-related changes in the structure and mechanical function of skin with multiscale imaging (2024)
-
Pre-Incisional and Multiple Intradermal Injection of N-Acetylcysteine Slightly Improves Incisional Wound Healing in an Animal Model (2024)
-
Mechanical Models of Collagen Networks for Understanding Changes in the Failure Properties of Aging Skin (2024)
-
A Three-Dimensional Valve-on-Chip Microphysiological System Reveals Novel Biomarkers of Early Calcific Aortic Valve Disease Progression (2023)
-
Neuro-regenerative behavior of adipose-derived stem cells in aligned collagen I hydrogels (2023)
-
Quantifying Age-Related Changes in Skin Microstructure and Function Using In Vivo Multiphoton Microscopy (2023)
-
Improving Autofluorescence Lifetime Decay Accuracy for Cellular Metabolic Imaging Applications (2023)
-
Neuro-Regenerative Behavior of Adipose-Derived Stem Cells in Aligned Collagen I Hydrogels (2023)
-
Neuro-Regenerative Behavior of Adipose-Derived Stem Cells in Aligned Collagen I Hydrogels (2023)
Collaboration Network
Top Collaborators
- Skin Structure–Function Relationships and the Wound Healing Response to Intrinsic Aging
- In vivo multiphoton microscopy detects longitudinal metabolic changes associated with delayed skin wound healing
- Quantifying Age-Related Changes in Skin Wound Metabolism Using In Vivo Multiphoton Microscopy
- Characterizing differences in the collagen fiber organization of skin wounds using quantitative polarized light imaging
- Three-Dimensional Quantification of Collagen Microstructure During Tensile Mechanical Loading of Skin
Showing 5 of 29 shared publications
- Skin Structure–Function Relationships and the Wound Healing Response to Intrinsic Aging
- In vivo multiphoton microscopy detects longitudinal metabolic changes associated with delayed skin wound healing
- Quantifying Age-Related Changes in Skin Wound Metabolism Using In Vivo Multiphoton Microscopy
- Characterizing differences in the collagen fiber organization of skin wounds using quantitative polarized light imaging
- Three-Dimensional Quantification of Collagen Microstructure During Tensile Mechanical Loading of Skin
Showing 5 of 10 shared publications
- Three-Dimensional Quantification of Collagen Microstructure During Tensile Mechanical Loading of Skin
- Quantification of age-related changes in the structure and mechanical function of skin with multiscale imaging
- Mechanical Models of Collagen Networks for Understanding Changes in the Failure Properties of Aging Skin
- Multiscale Computational Model Predicts Mouse Skin Kinematics Under Tensile Loading
- Quantifying age-related changes in the structure and mechanical function of skin with multiscale imaging
Showing 5 of 7 shared publications
- Three-Dimensional Quantification of Collagen Microstructure During Tensile Mechanical Loading of Skin
- Quantification of age-related changes in the structure and mechanical function of skin with multiscale imaging
- Mechanical Models of Collagen Networks for Understanding Changes in the Failure Properties of Aging Skin
- Multiscale Computational Model Predicts Mouse Skin Kinematics Under Tensile Loading
- Quantifying age-related changes in the structure and mechanical function of skin with multiscale imaging
Showing 5 of 6 shared publications
- In vivo multiphoton microscopy detects longitudinal metabolic changes associated with delayed skin wound healing
- Quantifying Age-Related Changes in Skin Wound Metabolism Using In Vivo Multiphoton Microscopy
- Efficacy of Combined in-vivo Electroporation-Mediated Gene Transfer of VEGF, HGF, and IL-10 on Skin Flap Survival, Monitored by Label-Free Optical Imaging: A Feasibility Study
- Longitudinal Monitoring of Skin Wounds In Vivo Using Label-free Multiphoton Microscopy
- In vivo label-free multiphoton microscopy for monitoring delayed skin wound healing
- Neuro-regenerative behavior of adipose-derived stem cells in aligned collagen I hydrogels
- A three-dimensional valve-on-chip microphysiological system implicates cell cycle progression, cholesterol metabolism and protein homeostasis in early calcific aortic valve disease progression
- Neuro-Regenerative Behavior of Adipose-Derived Stem Cells in Aligned Collagen I Hydrogels
- Neuro-Regenerative Behavior of Adipose-Derived Stem Cells in Aligned Collagen I Hydrogels
- A Three-Dimensional Valve-on-Chip Microphysiological System Reveals Novel Biomarkers of Early Calcific Aortic Valve Disease Progression
- Neuro-regenerative behavior of adipose-derived stem cells in aligned collagen I hydrogels
- A three-dimensional valve-on-chip microphysiological system implicates cell cycle progression, cholesterol metabolism and protein homeostasis in early calcific aortic valve disease progression
- Neuro-Regenerative Behavior of Adipose-Derived Stem Cells in Aligned Collagen I Hydrogels
- Neuro-Regenerative Behavior of Adipose-Derived Stem Cells in Aligned Collagen I Hydrogels
- A Three-Dimensional Valve-on-Chip Microphysiological System Reveals Novel Biomarkers of Early Calcific Aortic Valve Disease Progression
- A three-dimensional valve-on-chip microphysiological system implicates cell cycle progression, cholesterol metabolism and protein homeostasis in early calcific aortic valve disease progression
- Label-free optical biomarkers detect early calcific aortic valve disease in a wild-type mouse model
- A Three-Dimensional Valve-on-Chip Microphysiological System Reveals Novel Biomarkers of Early Calcific Aortic Valve Disease Progression
- A three-dimensional valve-on-chip microphysiological system implicates cell cycle progression, cholesterol metabolism and protein homeostasis in early calcific aortic valve disease progression
- Label-free optical biomarkers detect early calcific aortic valve disease in a wild-type mouse model
- A Three-Dimensional Valve-on-Chip Microphysiological System Reveals Novel Biomarkers of Early Calcific Aortic Valve Disease Progression
- A three-dimensional valve-on-chip microphysiological system implicates cell cycle progression, cholesterol metabolism and protein homeostasis in early calcific aortic valve disease progression
- Label-free optical biomarkers detect early calcific aortic valve disease in a wild-type mouse model
- A Three-Dimensional Valve-on-Chip Microphysiological System Reveals Novel Biomarkers of Early Calcific Aortic Valve Disease Progression
- Single Dose of N-Acetylcysteine in Local Anesthesia Increases Expression of HIF1α, MAPK1, TGFβ1 and Growth Factors in Rat Wound Healing
- N-Acetylcysteine Added to Local Anesthesia Reduces Scar Area and Width in Early Wound Healing—An Animal Model Study
- Pre-Incisional and Multiple Intradermal Injection of N-Acetylcysteine Slightly Improves Incisional Wound Healing in an Animal Model
- Single Dose of N-Acetylcysteine in Local Anesthesia Increases Expression of HIF1α, MAPK1, TGFβ1 and Growth Factors in Rat Wound Healing
- N-Acetylcysteine Added to Local Anesthesia Reduces Scar Area and Width in Early Wound Healing—An Animal Model Study
- Pre-Incisional and Multiple Intradermal Injection of N-Acetylcysteine Slightly Improves Incisional Wound Healing in an Animal Model
- Single Dose of N-Acetylcysteine in Local Anesthesia Increases Expression of HIF1α, MAPK1, TGFβ1 and Growth Factors in Rat Wound Healing
- N-Acetylcysteine Added to Local Anesthesia Reduces Scar Area and Width in Early Wound Healing—An Animal Model Study
- Pre-Incisional and Multiple Intradermal Injection of N-Acetylcysteine Slightly Improves Incisional Wound Healing in an Animal Model
- Single Dose of N-Acetylcysteine in Local Anesthesia Increases Expression of HIF1α, MAPK1, TGFβ1 and Growth Factors in Rat Wound Healing
- N-Acetylcysteine Added to Local Anesthesia Reduces Scar Area and Width in Early Wound Healing—An Animal Model Study
- Pre-Incisional and Multiple Intradermal Injection of N-Acetylcysteine Slightly Improves Incisional Wound Healing in an Animal Model
- Neuro-regenerative behavior of adipose-derived stem cells in aligned collagen I hydrogels
- Neuro-Regenerative Behavior of Adipose-Derived Stem Cells in Aligned Collagen I Hydrogels
- Neuro-Regenerative Behavior of Adipose-Derived Stem Cells in Aligned Collagen I Hydrogels
Similar Researchers
Based on overlapping research topics