Cannabis sativa-mediated biosynthesis of copper-zinc-selenium nanocomposites: phytochemical profiling, antioxidant properties, and molecular docking insights

Background: Nanotechnology is an emerging field widely applied across various disciplines, including medicine, to develop cost-effective and innovative therapies by delivering therapeutic compounds to targeted sites. The integration of multiple metals can yield synergistic multifunctional properties.

Aims: This study focuses on the green synthesis of copper-zinc-selenium (Cu-Zn-Se) nanocomposite, which is a straightforward and reliable method compared to chemical, physical, and mechanical techniques. Cannabis sativa, a dioecious plant from the Cannabinaceae family, has garnered significant attention due to its pharmacological properties and global cultivation.

Methods: In this research, Phytochemical analysis of extracts was carried out using Gas chromatography-mass spectrometry analysis (GC-MS). After that, a trimetallic copper-zinc-selenium (Cu-Zn-Se) nanocomposite was successfully synthesized using the floral biomass extract of Cannabis sativa and characterized by using UV-Vis spectral analysis, Scanning Electron Microscopy (SEM), and FTIR spectroscopy. Further, the potential applications of the synthesized trimetallic nanoparticles were evaluated by assessing their antioxidant activities through DPPH Free Radical Scavenging Activity, Hydrogen Peroxide Scavenging Assay, Ferric Reducing Power Assay, and Phosphomolybdate Antioxidant Activity. In addition, Molecular docking studies were used to investigate the drug target interactions for antioxidant behaviour.

Results: The UV-Vis spectrum displayed overlapping bands at 230, 290, and 327 nm, confirming the successful synthesis of the nanocomposite. FTIR analysis revealed peaks corresponding to various functional groups, notably a band at 1621.37 cm – 1 indicating C = O carbonyl stretching from amides, and a band at 1427.91 cm – 1 associated with C = C stretching (in-ring) from aromatic structures. SEM imaging showed spherical particles with an average size of 40 to 60 nm. A dose-dependent increase in antioxidant activity for the Cu-Zn-Se nanocomposite, which surpassed that of the plant extract in all assays studied and was comparable to the standard ascorbic acid. Molecular docking studies supported the experimental findings by showing that the Cu-Zn-Se nanocomposite binds stably to the antioxidant target protein, suggesting enhanced antioxidant activity.

Conclusion: This study is among the first to report the green synthesis of a Cannabis sativa-mediated Cu-Zn-Se trimetallic nanocomposite, highlighting its strong antioxidant potential and interaction pathways at the molecular level. These findings contribute novel insights into sustainable nanomaterial development and underscore the biomedical promise of phytogenic trimetallic nanocomposites as potent antioxidant agent.”

https://pubmed.ncbi.nlm.nih.gov/41131581

“The present study successfully demonstrates the synthesis, characterization, and evaluation of the antioxidant activity of the Cu-Zn-Se nanocomposite using Cannabis sativa floral biomass extract. The GC-MS analysis effectively identified the presence of key cannabinoids (THC, CBD, and CBN) and terpenes in the cannabis extract. These compounds contribute to the overall effects and therapeutic potential of the cannabis sample.”

“These results signify the immense bioactive potential of the green synthesized Cu-Zn-Se nanocomposite using Cannabis sativa extract, which can find applications in the pharmaceutical and industrial fields.”

https://link.springer.com/article/10.1186/s42238-025-00320-9

Mechanical, Electrical, and Thermal Performance of Hemp Fiber-Reinforced Elium Biocomposites Modified with Activated Carbon Nanoparticles: Experiment and Simulation

“This research examines the influence of various concentrations (0%, 1%, 1.4% and 1.8% by weight) of activated carbon nanoparticles (AC NPs) on the performance of Elium biocomposites reinforced with hemp fibers.

Unidirectional [0°/0°] laminates with 20% fiber volume fraction were fabricated via hand layup using two layers of 150 GSM hemp fabric and compression molded to achieve 0.9 mm cured thickness.

Quasi-static tensile testing (ASTM D3039, 2 mm/min, 100 mm gauge length) revealed a pronounced non-monotonic relationship between AC NPs loading and mechanical properties, with optimal performance at 1.0 wt.% fillers and catastrophic degradation at 1.8 wt.%. AC NPs filled composites, which were then characterized by their electrical and thermal behavior.

Electrically, it also achieved minimum resistivity (1.62 Ω·m) and maximum conductivity (0.62 S·m-1), in contrast to the elevated resistance (42.5 kΩ) found in samples with a higher filler content.

Thermal analysis showed a slight effect on the degradation of the onset temperature (300 °C) and a higher charring after addition of AC NP. Finite element analysis (FEA) provided a corroboration for these experimental findings, with simulations verification.

Microscopy revealed cohesive fractures in the 1.0 wt.% composite whereas voids and brittle failure were evident in samples with higher loading. Hence, the concentration of 1.0 wt.% AC NP offers the best trade off of mechanical, electrical, and thermal properties.”

https://pubmed.ncbi.nlm.nih.gov/41516850

https://www.mdpi.com/2073-4360/18/1/66


In Situ Synthesis of ZnO Nanoparticles Using Soy Protein Isolate for Sustainable and Multifunctional Finishing of Hemp Fabrics

“This study presents an environmentally sustainable finishing approach for hemp fabrics by combining soy protein isolate (SPI) pretreatment with an in situ infrared (IR)-assisted synthesis of zinc oxide nanoparticles (ZnO NPs).

IR heating was employed to reduce energy consumption while promoting efficient nanoparticle formation compared to conventional thermal processing, while SPI acted as a bio-based stabilizer to enable uniform ZnO NP distribution on the fabric surface. Transmission electron microscopy revealed predominantly spherical to polyhedral ZnO NPs with minimal agglomeration, and X-ray diffraction confirmed their characteristic wurtzite crystalline structure. Scanning electron microscopy coupled with energy-dispersive X-ray spectroscopy mapping further verified the homogeneous deposition of ZnO NPs on hemp fibers.

The treated fabrics exhibited multifunctional performance, showing significantly enhanced ultraviolet (UV) protection with a UV protection factor (UPF) of 50+ compared with untreated hemp.

Antibacterial activity against Staphylococcus aureus and Escherichia coli was confirmed by the AATCC TM147 test, while a quantitative AATCC TM100 assessment demonstrated an excellent antibacterial efficiency of 99.99% bacterial reduction against S. aureus. Additionally, the incorporation of 2 wt% SPI significantly improved fabric hydrophilicity and wettability.

Overall, this work demonstrates a green and effective strategy for producing antibacterial and UV-protective hemp textiles.”

https://pubmed.ncbi.nlm.nih.gov/41516899

“This study successfully developed a novel antibacterial finishing process for hemp fabrics by combining SPI pretreatment with an IR-assisted in situ synthesis of ZnO NPs.”

“Consequently, this work provides a generalized and scalable framework for the development of eco-friendly antibacterial and UV-protective textile finishes.”

https://www.mdpi.com/2073-4360/18/1/116


Cannabidiol-Loaded Mucoadhesive PLGA Nanosphere-Chitosan Hydrogel Patch for Oral Therapeutic Applications

“Cannabidiol (CBD), the primary bioactive element of cannabis, has shown promise in alleviating pain and inflammation, although mechanisms in periodontal inflammation are not fully understood.

To improve its limited solubility and mucosal permeability, the developed chitosan-based mucoadhesive hydrogel incorporating CBD-loaded PLGA nanospheres (CPN hydrogel) was characterized by FT-IR, SEM, particle size, rheological, swelling, and diffusion analyses, followed by biological evaluations, including wound-healing and RT-qPCR-based anti-inflammatory assays.

The improved CPN hydrogel had a homogeneous shape, better viscoelastic behavior, and sustained drug release. Over 90% of CBD was released within 96 h, and Franz cell experiments showed improved permeability (124.1 μg/cm2 after 72 h). The gellan gum-based mucosal substrate significantly increased adhesion (1137.33 ± 142.25 s) compared to the control groups.

Antioxidant studies indicated 73.65% DPPH radical scavenging, whereas antibacterial tests showed more than 99% suppression of Staphylococcus aureus. Furthermore, in vitro studies validated its wound healing and the downregulation of the inflammatory cytokines IL-6 and TNF-α.

The results indicate that the CPN-loaded chitosan hydrogel has extended mucosal retention, strong antibacterial activity, and steady release of CBD. This underscores its significant potential as a targeted treatment for inflammatory oral diseases such as gingivitis and periodontitis.”

https://pubmed.ncbi.nlm.nih.gov/41596768

“Cannabidiol (CBD), a non-psychoactive phytocannabinoid from Cannabis sativa with anti-inflammatory, immunomodulatory, and antimicrobial properties, is a promising bioactive compound for oral health applications [9,10,11]. In addition, CBD not only reduces inflammation, but also fights P. gingivalis very well.”

https://www.mdpi.com/1422-0067/27/2/1127


Development of smart/active chitosan/Kapppa-carrageenan films incorporating Aronia anthocyanin and ginger essential oil Pickering emulsion stabilized by hempseed protein nanoparticles

“The present study aimed to develop a multipurpose edible film with active (antioxidant/antimicrobial) and intelligent (food freshness monitoring) capabilities.

A Pickering nanoemulsion containing ginger essential oil (PNGEO) was prepared using hempseed protein as a stabilizer.

The effect of incorporating varying concentrations of PNGEO (0%, 5%, 10%w/v) and Aronia anthocyanin extract (AE) (0%, 4%, 8%w/v) on the physicochemical properties of films were evaluated using RSM and CCD, then optimal samples were identified using the utility function method, and their properties were examined.

The results demonstrated that the PNGEO formed a stable O/W emulsion with a Z-potential of -18.3 mV, a particle size of 108 nm, and PDI of 0.44. The encapsulation efficiencies were 91.72% for PNGEO. The AE exhibited pH-responsive color changes, transitioning from red to green across a pH range of 2-13. Increasing the AE and PNGEO enhanced the films’ water vapor barrier, antioxidant and antimicrobial properties. Elongation at break and tensile strength increased from 19.21% to 45.89% and from 6.25 to 15.97 MPa, respectively.

The pH color changes and sensitivity to ammonia gas confirmed the smart functionality of films. SEM and FTIR revealed minor changes in the chemical structure and strong molecular interactions between the biopolymer matrix and the incorporated components. XRD and DSC analyses indicated an increase in crystallinity index and a slight reduction in thermal stability. Release kinetics studies showed that higher temperatures and GEO content can increase the release rate and D values.

In conclusion, the film containing 8% AE and 10% PNGEO showed the best performance by simultaneously providing improvements in antioxidant/antimicrobial properties and sensitive color response to volatile spoilage compounds, and is introduced as a bio-based system with dual capabilities for maintaining quality and monitoring food freshness.”

https://pubmed.ncbi.nlm.nih.gov/41904862

“A novel active/smart edible film based on chitosan/kappa-carrageenan was developed using a Pickering nanoemulsion containing ginger essential oil and stabilized with hempseed protein and aronia anthocyanin extract to enhance the biopolymer’s properties.”

https://www.sciencedirect.com/science/article/abs/pii/S0308814626009222?via%3Dihub


Green Synthesis and Characterization of Nanographene-MnO Composite Nanoparticles for CO2 Capture: Adsorption Performance, Isotherm Analysis, and Reusability

“In this study, hybrid composite nanoparticles (MnO-NG/green) containing nanographene (NG) and manganese oxide (MnO) were produced by using an environmentally friendly synthesis approach, and their CO2 adsorption performance was investigated in detail.

The conventional method was used to synthesize MnO-NG composites, which were then compared with MnO-NG/green composites prepared via green synthesis using bioextract from the hemp plant.

The composite nanoparticles were structurally characterized using various analytical methods, including FTIR, XRD, SEM, TEM, EDX, and BET analyses. The surface morphology of the composites obtained through green synthesis demonstrated a more homogeneous and regular distribution of MnO nanoparticles on the NG surface.

BET analysis revealed that the specific surface area of the MnO-NG/green composites was 629 m2/g, with a mean pore diameter of 4.65 nm. CO2 adsorption tests were conducted at 273 and 298 K under 1 bar, and it was determined that the MnO-NG/green composites achieved 5.81 and 4.94 mmol/g CO2 uptake capacities, respectively.

These values were significantly higher than those of NG (2.59-2.07 mmol/g) and conventional MnO-NG (4.43-3.74 mmol/g) composites. Analysis of the adsorption isotherm models indicated that the experimental data were better fitted by the Langmuir model. The calculated isosteric heat of adsorption (Q st, 19.4-24.5 kJ/mol) suggests that the adsorption of CO2 by MnO-NG/green composites predominantly occurs via physisorption. The MnO-NG/green composites demonstrated high structural stability and thermal resistance in five-cycle reusability tests, showing a reuse efficiency of 97%.

This study clearly demonstrates that the production of MnO-NG/green composite nanoparticles via a green synthesis offers a promising approach.”

https://pubmed.ncbi.nlm.nih.gov/42110753

“This study provides a strong demonstration of the successful production of nanographene-manganese oxide (NG-MnO) composite nanoparticles via an environmentally friendly green synthesis method and of the use of this structure as a high-performance adsorbent for CO2 capture applications. Superior properties were exhibited by MnO-NG/green composites produced using bioextracts from the hemp plant”

“In conclusion, the achievement of sustainable material production through a green synthesis approach with low environmental impact is not the study’s only accomplishment. The development of a high-performance, reusable, and environmentally friendly adsorbent that can contribute to the reduction of CO2 emissions is another. The resulting MnO-NG/green nanocomposites could be used in many different ways, from in the lab to in industry, which makes them a good choice for next-generation adsorbents in carbon capture technologies.”

https://pubs.acs.org/acsodf/article/11/17/25730/5145806/Green-Synthesis-and-Characterization-of


Plant-derived neuroprotective compounds and nanoformulations targeting Parkinson’s disease: a semi-systematic review of mechanisms and therapeutic potential

“Parkinson’s disease (PD) is a progressive neurodegenerative disorder characterized by aggregates of α-synuclein and the degeneration of dopaminergic neurons in the substantia nigra. Current pharmaceutical therapies mainly alleviate symptoms without halting disease progression.

Evidence suggests that traditional plant-based interventions may serve as supplementary therapies by targeting oxidative stress, mitochondrial dysfunction, neuroinflammation, and apoptosis.

This review explores the neuroprotective properties of ten medicinal plants commonly used in traditional medicine: Bacopa monnieri, Curcuma longa, Mimosa pudica, Zingiber officinale, Ocimum sanctum, Emblica officinalis, Camellia sinensis, Cannabis sativa, Panax ginseng, and Withania somnifera. A systematic and comprehensive search of PubMed, Scopus, and Web of Science identified relevant in vitro, in vivo, and clinical studies.

This study highlights the mechanisms by which plant-derived chemicals influence cellular pathways associated with PD, emphasising their therapeutic potential despite limited clinical validation.

Studies have shown that bioactive compounds such as curcumin, bacoside, Epigallocatechin-3-gallate (EGCG), cannabidiol, ginsenosides, and withanolides exhibit antioxidant, anti-inflammatory, anti-apoptotic, and neuroprotective effects in PD models.

Nanotechnology offers promising strategy to enhance the efficacy of herbal compounds, addressing challenges of poor solubility, rapid metabolism, low bioavailability, and restricted blood-brain barrier penetration. Nano-delivery systems including liposomes, polymeric nanoparticles, nanoemulsions, and metal nanoparticles can improve stability, brain targeting, controlled release, and cellular uptake of these bioactives, thereby enhancing therapeutic efficiency while reducing systemic toxicity.

Green-synthesized plant-based nanoparticles further provide synergistic neuroprotective benefits, positioning phyto-nanomedicine as a multi-target approach for PD therapy. However, extensive clinical studies are required to confirm safety and effectiveness.”

https://pubmed.ncbi.nlm.nih.gov/42154395

“Current pharmaceutical therapies mainly alleviate symptoms without halting disease progression.”

“Evidence suggests that traditional plant-based interventions may serve as supplementary therapies by targeting oxidative stress, mitochondrial dysfunction, neuroinflammation, and apoptosis.”

“Studies have shown that bioactive compounds such as curcumin, bacoside, Epigallocatechin-3-gallate (EGCG), cannabidiol, ginsenosides, and withanolides exhibit antioxidant, anti-inflammatory, anti-apoptotic, and neuroprotective effects in PD models.”

https://link.springer.com/article/10.1007/s11011-026-01868-y


Phytochemistry-Guided Green Synthesis of Antimicrobial Silver Nanoparticles from Cannabis sativa Chemovars

“The phytochemical variability in Cannabis sativa L. chemovars represents an underexplored factor in environmentally sustainable nanomaterial production.

In this study, three distinct chemovars, (i) High-Δ9-Tetrahydrocannabinol (THC) (89% THC), (ii) Balanced (60% Cannabidiol (CBD)), and (iii) High-CBD (89% CBD), were comparatively evaluated to determine their suitability for the green synthesis of silver nanoparticles (AgNPs).

Ethanolic inflorescence extracts were used to recover bioactive secondary metabolites; among them, the High-CBD extract exhibited the highest total phenolic (3.34 mg gallic acid equivalent/g) and flavonoid (29.49 mg quercetine equivalent/g) contents, together with superior antioxidant capacity (53.16% 2,2-diphenyl-1-picrylhydrazyl free radical (DPPH) inhibition), indicating enhanced redox potential for nanoparticle formation. The terpene profile of High-CBD showed a dominance of myrcene (21.4%), contributing to the stabilization of the system.

Using the High-CBD extract, predominantly spherical nanoparticles of 5 ± 0.9 nm were synthesized and confirmed by UV-vis, EDS, and TEM. The biogenic AgNPs demonstrated significant dose-dependent antibacterial activity, with minimum bactericidal concentration (MBC) of 1.0 mg/mL against Staphylococcus aureus and 4.5 mg/mL against Escherichia coli.

These findings highlight the critical role of chemovar-dependent phytochemical composition and support a phytochemistry-guided approach for developing silver nanoparticles with potential biomedical applications.”

https://pubmed.ncbi.nlm.nih.gov/42123299

“This approach pursues to emphasize the relevance of full-spectrum compositions in cannabis extracts, particularly considering the reported ‘entourage effect’, where synergistic interactions among metabolites may enhance biological activity.”

“As a recognized medicinal plant, utilizing these inflorescence-derived compounds imparts an intrinsic therapeutic ‘added value’ to the nanoparticles.”

“By leveraging the synergistic potential between the plant’s bioactive constituents … and the antimicrobial silver core, this method offers an enhanced potential for biomedical applications compared to traditional chemical synthesis.”

“The successful synthesis of small, stable, and biologically active silver nanoparticles using the High-CBD extract underscores the potential of phytochemistry-guided strategies in advancing green nanotechnology for biomedical applications.”

https://www.mdpi.com/1422-0067/27/9/3713


Antimicrobial Agents in Fibrous Materials: A Comprehensive Review of Natural, Inorganic, and Organic Systems

“The escalating threat of antimicrobial resistance has spurred extensive research into antimicrobial fibers.

While numerous reviews have comprehensively cataloged the classification and mechanisms of natural, inorganic, and organic antimicrobial agents, a critical gap remains: few have systematically evaluated the engineering strategies that translate intrinsic biocidal activity into durable, real-world fiber performance.

This review addresses this gap by shifting focus from encyclopedic enumeration to a problem-oriented critical assessment of performance optimization strategies. We examine recent advances in natural fibers (bamboo, hemp, chitosan, jute) and synthetic fibers modified with antimicrobial agents, with emphasis on three core challenges-poor wash durability of natural agents, aggregation and leaching of inorganic nanoparticles (e.g., Ag, ZnO, MOFs), and structural limitations of organic agents (e.g., QACs, QPSs, N-halamines, PHMB). Key optimization routes, including covalent grafting, microstructural control (e.g., triaxial microfluidic spinning), organic-inorganic hybridization, and rechargeable N-halamine systems, are critically assessed for their effectiveness in enhancing washing resistance, stability, and antimicrobial synergy.

Based on this comparative synthesis, we identify future directions-smart-responsive systems, sustainable processing pathways, and standardized evaluation protocols-to guide the rational design of next-generation high-performance antimicrobial fibers.”

https://pubmed.ncbi.nlm.nih.gov/42513717

“Zhao and colleagues successfully converted seed-type hemp into regenerated cellulosic fibers through sequential degumming, pulping, and spinning processes”

“The resultant fibers exhibited significant antimicrobial effectiveness”

“The observed antimicrobial effects are primarily attributed to cannabinoids and their derivatives.”

“As global healthcare and sustainability challenges change, antimicrobial fibers are set to be crucial components in innovative solutions for public health protection and advanced material applications.”

https://www.mdpi.com/1996-1944/19/14/2980


Collective weak interactions of formic acid with hemp protein: Mechanism and application in Pickering emulsion stabilization

“Anti-solvent precipitation using formic acid (FA, 0-98%, v/v) was developed to fabricate hemp protein nanoparticles (HPNs) for Pickering emulsion stabilization.

FA ≥10% (v/v) increased hemp protein solubility from 38.0% to 86.9% by solubilizing storage globulins, yielding HPNs with tunable sizes (100-780 nm), high ζ-potentials (>30 mV), and adjustable contact angles (57.7°-126.6°).

HPNs prepared at 40% FA exhibited optimal interfacial properties, including the lowest interfacial tension and highest emulsifying activity index (∼1800 m2/g), forming Pickering emulsions with 3-week stability and solid-like rheology.

Spectroscopic analysis revealed concentration-dependent conformational changes: invariant Raman spectra confirmed intact primary bonds, while fluorescence and UV-vis indicated initial unfolding (10-40%) followed by refolding (50-98%), and FT-IR showed that β-sheet content peaked at 61% (40% FA), which correlated with optimal interfacial performance.

Molecular dynamics simulations elucidated a dynamic “besieging effect” where numerous FA molecules collectively disrupted edestin’s hydrogen-bond network via weak interactions (binding energy -3.1 kcal/mol), inducing transient conformational expansion.

This work demonstrates the feasibility of FA as a solvent system for hemp protein nanoparticle fabrication and provides mechanistic insights into unconventional protein-solvent interactions, offering a foundation for future food-grade applications.”

https://pubmed.ncbi.nlm.nih.gov/42637338

“Tunable hemp protein nanoparticles with adjustable wettability are fabricated for Pickering emulsion stabilization.”

https://www.sciencedirect.com/science/article/abs/pii/S096399692601865X?via%3Dihub