Mariya V. Khodakovskaya
Sourced from institutional research profiles (UAMS TRI or ARA).
ARA Fellow
Also affiliated: Pennsylvania State University (2005); Russian Academy of Sciences (2005–2018); North Carolina State University (2009); University of Connecticut (2005–2006); University of South Carolina (2005); Purdue University West Lafayette (2005); University of Arkansas System (2010–2023); Federal Scientific Center of the East Asia Terrestrial Biodiversity FEB RAS (2018); Far Eastern Branch of the Russian Academy of Sciences (2011–2018)
Research Areas
Biomedical Subjects
Links
Biography and Research Information
OverviewAI-generated summary
Mariya V. Khodakovskaya's research focuses on the interaction of carbon nanotubes with plants, investigating their uptake, biological effects, and potential applications. Her work examines how these nanoparticles can influence seed germination, plant growth, and reproductive development in various crop species, including tomatoes and tobacco. Khodakovskaya has explored the impact of carbon nanotube surface chemistry on plant physiology, specifically in relation to water channel proteins and gene expression in tomato plants.
Her research also extends to understanding the complex genetic and photothermal interactions that occur when nanoparticles interact with plants. Khodakovskaya has studied the effects of carbon nanohorns on plant uptake and biological responses, as well as the potential of carbon nanotubes to act as plant growth regulators. Her work has been recognized with a designation as an ARA Fellow and she is identified as a high-impact researcher based on her citation metrics, which include an h-index of 32 and over 6,600 citations across 72 publications. She actively collaborates with researchers at the University of Arkansas at Little Rock and the University of Arkansas at Fayetteville.
Metrics
- h-index: 32
- Publications: 73
- Citations: 6,626
Positions
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ARA Fellow publications 2009–2026University of Arkansas at Little Rock Institutional directory
Selected Publications
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A Decade of Green Nanotechnology: Applications, Advances, and Emerging Directions (2026)
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A Plant-Derived Arabinoxylan Platform for Biomolecule Delivery into Plant Cells (2026)
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Integration of transcriptomics and proteomics data for understanding the mechanisms of positive effects of carbon-based nanomaterials on plant tolerance to salt stress (2025)
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Revisiting NaOH Addition during the Amination of Cellulose Nanocrystals (2025)
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From Plants to Plants: Plant-Derived Biological Polymers as Sustainable and Safe Nanocarriers for Direct Delivery of DNA to Plant Cells (2025)
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A vacuolar proton pump controls the post-germinative growth of rice (Oryza sativa ssp. japonica) (2025)
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Identification of Stress-Responsive Metabolites in Plants Using an Untargeted Metabolomics Approach (2024)
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Towards realizing nano-enabled precision delivery in plants (2024)
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A vacuolar proton pump controls post-germinative growth of rice (Oryza sativa ssp. japonica) (2024)
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Cellulose Nanocrystals are a Renewable and Biocompatible Nanocarrier of Agrochemicals Directly to Plant Cells (Adv. Sustainable Syst. 5/2024) (2024)
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Effects of NaOH Addition on Cellulose Nanocrystal Functionalization with 2,4-Dichlorophenoxyacetic Acid (2024)
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Cellulose Nanocrystals are a Renewable and Biocompatible Nanocarrier of Agrochemicals Directly to Plant Cells (2023)
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Targeted mutagenesis of the vacuolar H+ translocating pyrophosphatase gene reduces grain chalkiness in rice (2023)
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Editorial: Polymeric nanoparticles for sustainable plant agriculture and food industry (2023)
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Emerging investigator series: differential effects of carbon nanotubes and graphene on the tomato rhizosphere microbiome (2023)
ARA Academy 2021 ARA Fellow
Dr. Khodakovskaya joined UALR's faculty in 2008 and has become recognized for pioneering work applying carbon-based nanomaterials to enhance crops. Her research has been highlighted in Nature Nanotechnology and The Economist for discoveries in seed germination and plant growth regulation. Her laboratory investigates how advanced genetic engineering, molecular biology, and nanotechnology can boost plant productivity and environmental stress tolerance.
Policy Impact
Research highlighted in Nature Nanotechnology and The Economist, positioning Arkansas as a leader in agricultural nanotechnology with potential to boost crop productivity statewide.
Growth Areas
['Precision Agriculture', 'Food Production & Integrative Health']
Collaboration Network
Top Collaborators
- Impact of Carbon Nanotube Exposure to Seeds of Valuable Crops
- Interaction of carbon nanohorns with plants: Uptake and biological effects
- Effects of carbon-based nanomaterials on seed germination, biomass accumulation and salt stress response of bioenergy crops
- Comparative study of plant responses to carbon-based nanomaterials with different morphologies
- Multiwalled Carbon Nanotubes Dramatically Affect the Fruit Metabolome of Exposed Tomato Plants
Showing 5 of 15 shared publications
- Carbon Nanotubes Induce Growth Enhancement of Tobacco Cells
- Complex genetic, photothermal, and photoacoustic analysis of nanoparticle-plant interactions
- Impact of Carbon Nanotube Exposure to Seeds of Valuable Crops
- Surface Chemistry of Carbon Nanotubes Impacts the Growth and Expression of Water Channel Protein in Tomato Plants
- Physiological responses induced in tomato plants by a two-component nanostructural system composed of carbon nanotubes conjugated with quantum dots and itsin vivomultimodal detection
Showing 5 of 12 shared publications
- Carbon Nanotubes Induce Growth Enhancement of Tobacco Cells
- Carbon Nanotubes as Plant Growth Regulators: Effects on Tomato Growth, Reproductive System, and Soil Microbial Community
- Complex genetic, photothermal, and photoacoustic analysis of nanoparticle-plant interactions
- Impact of Carbon Nanotube Exposure to Seeds of Valuable Crops
- Surface Chemistry of Carbon Nanotubes Impacts the Growth and Expression of Water Channel Protein in Tomato Plants
Showing 5 of 10 shared publications
- Advanced applications of sustainable and biological nano-polymers in agricultural production
- From Plants to Plants: Plant-Derived Biological Polymers as Sustainable and Safe Nanocarriers for Direct Delivery of DNA to Plant Cells
- Targeted mutagenesis of the vacuolar H+ translocating pyrophosphatase gene reduces grain chalkiness in rice
- Cellulose Nanocrystals are a Renewable and Biocompatible Nanocarrier of Agrochemicals Directly to Plant Cells
- A vacuolar proton pump controls the post-germinative growth of rice (Oryza sativa ssp. japonica)
Showing 5 of 9 shared publications
- Carbon Nanotubes as Plant Growth Regulators: Effects on Tomato Growth, Reproductive System, and Soil Microbial Community
- Carbon-based nanomaterials as stimulators of production of pharmaceutically active alkaloids in cell culture of Catharanthus roseus
- Role of carbonaceous nanomaterials in stimulating osteogenesis in mammalian bone cells
- Reduction of inositol (1,4,5)–trisphosphate affects the overall phosphoinositol pathway and leads to modifications in light signalling and secondary metabolism in tomato plants
- Polyphenolic extract of InsP 5-ptase expressing tomato plants reduce the proliferation of MCF-7 breast cancer cells
Showing 5 of 8 shared publications
- Carbon Nanotubes Induce Growth Enhancement of Tobacco Cells
- Surface Chemistry of Carbon Nanotubes Impacts the Growth and Expression of Water Channel Protein in Tomato Plants
- Assessment of Effects of the Long-Term Exposure of Agricultural Crops to Carbon Nanotubes
- Modification of tomato growth by expression of truncated ERECTA protein from Arabidopsis thaliana
- In vivo plant flow cytometry: A first proof‐of‐concept
Showing 5 of 7 shared publications
- Whole-Transcriptome Responses to Environmental Stresses in Agricultural Crops Treated with Carbon-Based Nanomaterials
- Enhancement of drought tolerance in rice by silencing of the OsSYT-5 gene
- Comprehensive Risk Assessment of Carbon Nanotubes Used for Agricultural Applications
- Modification of soybean growth and abiotic stress tolerance by expression of truncated ERECTA protein from Arabidopsis thaliana
- Emerging investigator series: differential effects of carbon nanotubes and graphene on the tomato rhizosphere microbiome
Showing 5 of 6 shared publications
- Physiological responses induced in tomato plants by a two-component nanostructural system composed of carbon nanotubes conjugated with quantum dots and itsin vivomultimodal detection
- Nanostructural materials increase mineralization in bone cells and affect gene expression through miRNA regulation
- Plasmonically active nanorods for delivery of bio-active agents and high-sensitivity SERS detection in planta
- Raman spectroscopy as a detection and analysis tool for in vitro specific targeting of pancreatic cancer cells by EGF‐conjugated, single‐walled carbon nanotubes
- In vivo plant flow cytometry: A first proof‐of‐concept
- Impact of Carbon Nanotube Exposure to Seeds of Valuable Crops
- Assessment of Effects of the Long-Term Exposure of Agricultural Crops to Carbon Nanotubes
- Plasmonically active nanorods for delivery of bio-active agents and high-sensitivity SERS detection in planta
- Raman spectroscopy as a detection and analysis tool for in vitro specific targeting of pancreatic cancer cells by EGF‐conjugated, single‐walled carbon nanotubes
- Carbon nanotubes as carriers of Panax ginseng metabolites and enhancers of ginsenosides Rb1 and Rg1 anti-cancer activity
- Carbon Nanotubes Induce Growth Enhancement of Tobacco Cells
- Complex genetic, photothermal, and photoacoustic analysis of nanoparticle-plant interactions
- Surface Chemistry of Carbon Nanotubes Impacts the Growth and Expression of Water Channel Protein in Tomato Plants
- Reduction of inositol (1,4,5)–trisphosphate affects the overall phosphoinositol pathway and leads to modifications in light signalling and secondary metabolism in tomato plants
- Bioresponse to Nanotubes: Surface Chemistry of Carbon Nanotubes Impacts the Growth and Expression of Water Channel Protein in Tomato Plants (Small 15/2012)
- Interaction of carbon nanohorns with plants: Uptake and biological effects
- Effects of carbon-based nanomaterials on seed germination, biomass accumulation and salt stress response of bioenergy crops
- Multiwalled Carbon Nanotubes Dramatically Affect the Fruit Metabolome of Exposed Tomato Plants
- Improvement of Commercially Valuable Traits of Industrial Crops by Application of Carbon-based Nanomaterials
- Comprehensive Risk Assessment of Carbon Nanotubes Used for Agricultural Applications
- Whole-Transcriptome Responses to Environmental Stresses in Agricultural Crops Treated with Carbon-Based Nanomaterials
- Comprehensive Risk Assessment of Carbon Nanotubes Used for Agricultural Applications
- Targeted mutagenesis of the vacuolar H+ translocating pyrophosphatase gene reduces grain chalkiness in rice
- Integration of transcriptomics and proteomics data for understanding the mechanisms of positive effects of carbon-based nanomaterials on plant tolerance to salt stress
- Identification of Stress-Responsive Metabolites in Plants Using an Untargeted Metabolomics Approach
- From Plants to Plants: Plant-Derived Biological Polymers as Sustainable and Safe Nanocarriers for Direct Delivery of DNA to Plant Cells
- Cellulose Nanocrystals are a Renewable and Biocompatible Nanocarrier of Agrochemicals Directly to Plant Cells
- Revisiting NaOH Addition during the Amination of Cellulose Nanocrystals
- Effects of NaOH Addition on Cellulose Nanocrystal Functionalization with 2,4-Dichlorophenoxyacetic Acid
- Cellulose Nanocrystals are a Renewable and Biocompatible Nanocarrier of Agrochemicals Directly to Plant Cells (Adv. Sustainable Syst. 5/2024)
- From Plants to Plants: Plant-Derived Biological Polymers as Sustainable and Safe Nanocarriers for Direct Delivery of DNA to Plant Cells
- Cellulose Nanocrystals are a Renewable and Biocompatible Nanocarrier of Agrochemicals Directly to Plant Cells
- Revisiting NaOH Addition during the Amination of Cellulose Nanocrystals
- Effects of NaOH Addition on Cellulose Nanocrystal Functionalization with 2,4-Dichlorophenoxyacetic Acid
- Cellulose Nanocrystals are a Renewable and Biocompatible Nanocarrier of Agrochemicals Directly to Plant Cells (Adv. Sustainable Syst. 5/2024)
- Carbon Nanotubes as Plant Growth Regulators: Effects on Tomato Growth, Reproductive System, and Soil Microbial Community
- Nanostructural materials increase mineralization in bone cells and affect gene expression through miRNA regulation
- Raman spectroscopy as a detection and analysis tool for in vitro specific targeting of pancreatic cancer cells by EGF‐conjugated, single‐walled carbon nanotubes
- Role of carbonaceous nanomaterials in stimulating osteogenesis in mammalian bone cells
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