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Ординатура / Хирургия / Библиотека им академика М.И. Перельмана / Книга_5639_Библиотеки_им_академика_М_И_Перельмана

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strategy is in line with sustainability and green technologies (Arora et al. 2020; Basavegowda and Baek 2021).
Researchers have been exploring with microbial synthesis to create nanoparticle morphologies other than spheres and rods. These new forms could nd use in nano­electronics and catalysis. Some studies have concentrated on the utilization of microbial consortia, which entail the interaction of different microorganisms, to improve nanoparticle synthesis. Consortia in nanoparticle production can be tai­lored to function synergistically. Microbial synthesis has also been used to produce nanoparticles for bioremediation applications such as eliminating toxins from dam­aged environments (Table5.1).
Table 5.1 Current studies on the microbial-facilitated production of nanoparticles
Nanoparticle
Microorganism
Escherichia coli Ag Antimicrobial Saeed etal. (2020) Mycobacterium sp. Au Anticancer Camas etal. (2018) Bacillus subtilis Fe3O
Serratia nematodiphila
Lactobacillus sporogenes
Gordonia amicalis Ag Antioxidant, scavenging Sowani etal. (2016) Morchella esculenta Au Antimicrobial and cytotoxicity Acay (2021) Cladosporium
perangustum Trichoderma
harzianum
Thermophilic fungus
Humicola sp. Penicillium
chrysogenum Penicillium
janthinellum DJP06 Trichoderma
longibrachiatum Nocardiopsis sp.
MBRC-1 Marine endophytic
actinomycetes Rhodococcus sp.
(Actinomycete) Streptomyces sp.
JAR1 Streptomyces sp. LK3 Ag Acaricidal activity against
type Applications Reference
4
Zinc sulde Antibacterial Malarkodi and
ZnO Antimicrobial Mishra etal. (2013)
Ag Antioxidant, anticancer, and
Au Antibacterial Tripathi etal.
CeO
2
Pt Cytotoxicity Subramaniyan etal.
Au Anticancer Pareek etal. (2020)
Ag Antifungal against phyto-
Ag Antimicrobial Manivasagan etal.
Cu Antibacterial Rasool and
Au Antimicrobial Ahmad etal. (2003)
Ag Antimicrobial Chauhan (2013)
Antimicrobial Sundaram etal.
(2012)
Annadurai (2013)
Govindappa etal.
nano-toxicological study
Antibacterial Khan and Ahmad
pathogenic fungi
Rhipicephalus microplus and Haemaphysalis bispinosa
(2020)
(2018)
(2013)
(2018)
Elamawi etal. (2018)
(2013)
Hemalatha (2017)
Karthik etal. (2014)
5 Development ofNanoparticles: Recent Developments andFuture Prospects
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Table 5.1 (continued)
Microorganism
Nostoc linckia Ag Antibacterial Vanlalveni etal.
Amphiroa rigida Ag Antibacterial, cytotoxicity, and
Galaxaura elongate Au Antibacterial Abdel-Raouf etal.
Cystoseira baccata Au Anticancer
Spirulina platensis Pd Adsorbent Sayadi etal. (2018) Ulva armoricana sp. Ag Bactericidal Massironi etal.
Chlorella ellipsoidea Ag Photophysical, catalytic, and
Nanoparticle type Applications Reference
(2018) Gopu etal. (2021)
larvicidal
(2017) González-
Ballesteros etal. (2017)
(2019) Borah etal. (2020)
antibacterial
5.7 Future Prospects ofMicrobes-Mediated Synthesis
ofNanoparticles (Arora etal. 2020; Koul etal. 2021; Qureshi etal. 2021; Yang etal. 2022a)
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The future prospects of microbial nanoparticle production are excellent, with appli­cations ranging from healthcare to environmental remediation to materials research and beyond. Here are some prospects for this eld in the future:
Customized Nanoparticle Properties:
• Tailored nanoparticles: Researchers may create microorganisms that produce
nanoparticles with precisely controlled characteristics including size, shape, and
surface modications through genetic engineering and bioprocess optimization.
• Application-specic nanoparticles: Tailored nanoparticles can be created for a
range of uses, such as electronics, catalysis, medicine delivery, and more.
Advanced Biomedical Applications:
• Microbially synthesized nanoparticles can be engineered to selectively transport
medicinal compounds to specic cells or tissues, thereby minimizing undesir-
able side effects and enhancing the effectiveness of treatment.
• Imaging and diagnostics: Biocompatible nanoparticles can serve as contrast
agents in sophisticated imaging techniques like MRI and CT scans to identify
and track diseases at an early stage.
Production of Green Nanomaterials:
• Sustainable nanomaterials: Microbial synthesis aligns with green and sustain-
able technology trends. The procedure is environmentally safe, uses less harmful
chemicals, and saves energy.
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• Renewable nanomaterials: Microorganisms can be used to manufacture nanoma-
terials from renewable resources, so helping to develop sustainable and circular
economies.
Environmental Remediation:
• Heavy metal removal: Nanoparticles generated by microbes can be employed to
efciently remove heavy metals and pollutants from water and soil, assisting in
environmental cleanup efforts.
• Pollution control: These nanoparticles have the potential to be used to create
novel materials for air and water purication systems, resulting in less pollution
and cleaner ecosystems.
Nanoelectronics and Sensing:
• Novel Nanoelectronic Devices: Nanoparticles generated by microbes with
unique features can be integrated into advanced nanoelectronic devices such as
sensors and memory devices.
• Improved Sensing: These nanoparticles have the potential to make sensors more
sensitive and selective for environmental monitoring, healthcare, and security
applications.
Multimetallic and Multifunctional Nanoparticles:
• Advanced Catalysis: Microbial synthesis can be employed to build complex
multimetallic nanoparticles with enhanced catalytic characteristics, enhancing
chemical reaction efciency and generating sustainable energy.
• Multifunctional Materials: Nanoparticles with a variety of qualities can be cre-
ated and used in multifunctional materials for a variety of industries, including
aerospace and electronics.
Emerging Microbial Strains and Engineering:
• Custom Microbial Strains: Further study may lead to the identication and engi-
neering of microorganisms with better nanoparticle synthesis capabilities, allow-
ing nanoparticle attributes to be ne-tuned.
• Synthetic Biology Approaches: Synthetic biology advances can be used to
manipulate microbes for specic nanoparticle manufacturing goals.
Bioremediation and Biomineralization:
• Improved Bioremediation: Microbially generated nanoparticles can be employed
to boost bioremediation processes in contaminated environments by improving
pollutant biological breakdown.
• Biomineralization: Through biomineralization processes, research in this area
may lead to the production of novel materials for construction, building,
and repair.
Industrial Scale-Up and Commercialization:
• Large-Scale Production: As microbial nanoparticle synthesis technologies
advance, they are likely to nd greater commercial-scale usage across a variety
of industries.
5 Development ofNanoparticles: Recent Developments andFuture Prospects
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• Innovative Products: Coatings, lters, and functional nanomaterials based on
microbially generated nanoparticles may be developed in the future.
Regulatory Structures and Safety Measures:
Ongoing research will concentrate on developing safety criteria and regulatory frameworks for the manufacture and implementation of microbially produced nanoparticles, assuring their safe usage in a variety of industries and applications.
The future of microbial nanoparticle synthesis holds considerable promise for environmentally benign and sustainable nanotechnology solutions. It is expected to continue making substantial contributions in sectors ranging from healthcare and materials research to environmental protection and industrial manufacturing. The practical application of nanoparticles produced by microorganisms is expected to expand as research in this area progresses.
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5.8 Recent Development inPlant-Mediated Synthesis
ofNanoparticles (Munir etal. 2021; Nasrollahzadeh etal. 2019; Rani etal. 2023)
Using plant materials like leaves, stems, roots, and extracts, plant-mediated nanopar­ticle synthesis (also called “green synthesis”) creates nanoparticles in an eco­friendly and sustainable way. Nanoparticles are created through the process of extracting metal ions from solutions in this method. The technology is not only ecologically clean and sustainable, but it also provides unique options for designing nanoparticles for specic applications. Researchers continue to investigate different plant sources and green synthesis optimization methodologies, broadening the potential for sustainable nanotechnology.
The green synthesis of nanoparticles typically follows these steps:
• Select a plant source based on the desired properties of the nanoparticles. Various
plant species, including medicinal herbs, algae, and trees, have been used.
• A ne powder is made by cleaning, drying, and grinding the chosen plant mate-
rial. Immersing plant material in an appropriate solvent is one method for prepar-
ing plant extracts.
• Combine the botanical substance or extract with a solution that contains metal
ions, typically metal salts such as silver nitrate or gold chloride.
• The plant material or extract contains reducing agents such as phytochemicals,
enzymes, and proteins, which are responsible for reducing metal ions and form-
ing nanoparticles. This decrease triggers the commencement of nucleation and
growth mechanisms.
• Nanoparticles are formed and can be isolated using methods like centrifugation,
ltration, or ultracentrifugation.
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Recent advances in the eld of plant-mediated nanoparticle synthesis have demonstrated great progress in leveraging plants’ inherent ability to generate nanoparticles with a variety of applications. Diverse Plant Sources: Scientists have broadened the plant species employed in nanoparticle manufacturing. Various plant sources, including marine plants, medicinal herbs, and agricultural crops, have been studied for their ability to synthesize nanoparticles, in addition to tradi­tional plants like Aloe vera and green tea. Plant-mediated synthesis is a valuable method for producing biocompatible nanoparticles. Current studies have focused on creating biocompatible nanoparticles that can be utilized in medication admin­istration, cancer treatment, and tissue regeneration. The ability to interact harmo­niously with biological systems is of utmost importance in these applications. Green Synthesis: Scientists are increasingly dedicated to creating ecologically conscious and sustainable ways for synthesizing nanoparticles using plants as a basis. These green synthesis methods reduce the use of harmful chemicals while also lowering the environmental effect of nanoparticle creation. Targeted Delivery: Technological advances have resulted in the development of nanoparticles with greater targeting capabilities. Surface modication and biofunctionalization of plant-mediated nanoparticles allow for more precise drug delivery and therapeutic efciency.
Enhanced characterization: Advances in analytical techniques have enhanced the characterization of plant-mediated nanoparticles. Advanced microscopy, spec­troscopic, and analytical tools will be used to provide extensive insights into the structural and functional features of these nanoparticles. Phytochemical Control: Scientists are investigating the utilization of plant extracts rich in specic phyto­chemicals to control the dimensions, structure, and properties of articially pro­duced nanoparticles. This enables the tailoring of nanoparticles for diverse applications. Plant-mediated nanoparticles have demonstrated promise in combat­ing antibiotic-resistant microorganisms. Recent studies have investigated the anti­bacterial properties of these substances for various medical and environmental uses. Plant-mediated nanoparticles have found use in catalysis, where their unique features improve reaction speeds and selectivity. They are also being researched for energy-related applications like solar cells and fuel cells. Commercialization and Industrial Scale-Up: Efforts are currently underway to commercialize plant­mediated nanoparticles and scale up their production for industrial usage, with an emphasis on lowering production costs and assuring quality consistency (Table5.2).
These new ndings underscore the growing interest in plant-mediated nanopar­ticle synthesis as a sustainable and adaptable technique with applications ranging from healthcare and agriculture to environmental remediation and energy technol­ogy. The topic has enormous promise for innovative solutions to different global concerns as researchers continue to investigate new plant sources, enhance synthe­sis methods, and broaden the variety of applications.
5 Development ofNanoparticles: Recent Developments andFuture Prospects
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Table 5.2 Recent research in plant-mediated synthesis of nanoparticles
Nanoparticle
Plant name
Amaranthus spinosus Silver Antibacterial Preenanka and
Cycas pschannae ZnO Antibacterial Sudha etal. (2020) Cyrtrandroemia
nicobarica Knema andamanica ZnO Antibacterial Sudha etal. (2021b) Leea asiatica ZnO Antioxidant Ali etal. (2021a) Leea grandifolia ZnO Antibacterial Ali etal. (2021b) Manilkara littoralis ZnO Antioxidant Ali etal. (2022) Durio zibethinus
seed
Artocarpus altilis Ag Antimicrobial, antioxidant Ravichandran etal.
Durio zibethinus ZnO Antimicrobial, antioxidant,
Durio zibethinus rind Ag Antimicrobial, antioxidant Sumitha etal. (2019) Parkia speciosa Ag Antimicrobial, antioxidant,
type Applications Reference
Sebastian (2022)
ZnO Antioxidant Sudha etal. (2021a)
Ag Antimicrobial, cytotoxic,
photocatalytic
cytotoxic, photocatalytic
photocatalytic
Sumitha etal. (2018)
(2016) Ravichandran etal.
(2020)
Ravichandran etal. (2019)
5.9 Future Prospects ofPlant-Mediated Synthesis
ofNanoparticles (Rani etal. 2023; Ankamwar etal.
2020; Shyam etal. 2021)
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Plant-mediated nanoparticle synthesis has a bright future, with continuous research and development pointing to a wide range of possible uses and advances. Here are some of the most promising future prospects for this environmentally friendly and sustainable method:
Customized Nanoparticle Properties:
• Tailored nanoparticles: Researchers will continue to investigate the utilization of
various plant sources, extracts, and optimization methodologies to tailor nanopar-
ticles with precise attributes for specic purposes, such as size, shape, and sur-
face changes.
Biomedical and Healthcare Applications:
• Targeted medication delivery: Because plant-mediated nanoparticles are bio-
compatible, they can be used for targeted drug delivery, improving treatment
efcacy and decreasing side effects.
• Theranostics: Theranostics, or the dual role of nanoparticles in diagnosis and
therapy, will continue to improve in areas such as cancer.
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Environmental Remediation and Water Purication:
• Effective pollutant removal: Plant-mediated nanoparticles have the ability to
remove heavy metals, pollutants, and toxins from water and soil, so contributing
to environmental cleanup and long-term water purication.
• Improved air quality: These nanoparticles could be used in air ltration technol-
ogy to combat air pollution.
Nanoelectronics and Sensing:
• High-performance sensors: Future research will concentrate on combining plant-
derived nanoparticles into highly sensitive and selective sensors for use in health-
care, environmental monitoring, and security.
• Low-power, energy-efcient electronics: Plant-mediated nanoparticles can help
to produce low-power, energy-efcient electronic devices.
Multimetallic and Multifunctional Nanoparticles:
• Advanced catalysis: Researchers will investigate the utilization of plant- mediated
synthesis to produce complex multimetallic nanoparticles with improved cata-
lytic capabilities, which will have an impact on elds such as sustainable energy
production and chemical processes.
• Multifunctional materials: Multifunctional nanoparticles will be incorporated
into materials with a wide range of uses, such as aerospace, electronics, and
sophisticated coatings.
Novel Plant Sources and Phytochemicals:
• New plant sources will be investigated: Researchers will continue to explore
diverse plant species in order to uncover unique phytochemicals with nanopar-
ticle production potential.
• Plant-mediated synthesis can be integrated into sustainable agriculture and agro-
waste use strategies, beneting both agriculture and nanotechnology.
Standardization and Large-Scale Production:
• Industry acceptance: If the technique advances, plant-mediated synthesis may
see increased application in a variety of industries, if standardized methods for
large-scale manufacturing are developed.
• Green nanotechnology: The method follows the tenets of green nanotechnology,
with a focus on sustainability and environmental friendliness.
The future of plant-mediated nanoparticle synthesis is dened by ongoing research, innovation, and an expanding array of applications in a variety of sectors. This method provides a sustainable and environmentally benign approach to nano­technology and is predicted to play an important role in tackling many healthcare, environmental, and materials science concerns.
5 Development ofNanoparticles: Recent Developments andFuture Prospects
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5.10 Recent Development inSynthesis ofNanoparticles
Using Biopolymers (Alavi andRai 2019; El-Sherbiny andSalih 2018; Vijayakumar etal. 2019)
The utilization of biopolymers and biomolecules for the production of nanoparticles is an environmentally friendly and sustainable approach that has gained popularity due to its biocompatibility and minimal ecological impact. Biopolymers and bio­molecules serve as both reducing and stabilizing agents throughout the nanoparticle synthesis process (Table5.3).
These examples demonstrate the adaptability and biocompatibility of nanopar­ticles made from biopolymers and biomolecules. This green synthesis method opens up a plethora of opportunities for designing nanoparticles for specic uses in healthcare, materials research, environmental remediation, and other elds. Researchers are constantly looking for new biopolymers and biomolecules to help progress this sector.
Table 5.3 Recent research in synthesis of nanoparticles using biopolymers and biomolecules
Biopolymers Method Applications Reference
Alginate Calcium ion regulation of
alginate gel formation
Sodium alginate and BSA
Alginate and chitosan
Alginate Modied coacervation or
Chitosan Complex coacervation
Chitosan Ionic crosslinking of
Chitosan– alginate
Emulsion solidication Determining the kinetic
Alginate is pre-gelated ionotropically with calcium chloride, and then it complexes with chitosan
ionotropic gelation
technique
chitosan solution with TPP
Water-in-oil reverse microemulsion
Using doxorubicin as a model drug, the drug-loading capacity was evaluated
characteristics of the metabolism of 5-FU sodium alginate-125I BSA nanoparticles
Monitor the formation of complexes between polyelectrolytes with opposite charges as carriers for insulin nanoparticles
Mucoadhesive nanoparticulate carrier system optimization for sustained medication administration in the eyes
Encapsulate nucleic acids (DNA) and increase the effectiveness of both invitro and invivo transfection
Put plasmid DNA in an encapsulated form to effectively distribute genes for transfection
Rajaonarivony etal. (1993)
Yi (1999)
Sarmento etal. (2006)
Motwani etal. (2007)
Mansouri etal. (2004)
Sharma etal. (2007)
Sharma etal. (2007)
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Polymer-based nanoparticle synthesis has advanced signicantly in recent years, resulting in versatile and adjustable nanoparticles with a wide range of uses. Polymer Nanoparticles for Drug Delivery: Polymer-based nanoparticles, such as polymeric micelles and dendrimers, have gained popularity as drug delivery vehicles. Recent advancements have focused on increasing drug-loading capacities, controlling release, and improving the stability and targeting of drug-loaded polymer nanopar­ticles. Multifunctional Polymer Nanoparticles: Researchers are working to create multifunctional polymer nanoparticles by combining different components, such as imaging agents, targeting ligands, and medicinal payloads, into a single nanoparti­cle system. These nanoparticles are intended for theranostic applications, allowing both diagnosis and treatment at the same time. Responsive Polymer Nanoparticles: Smart polymers that can react to environmental factors such as temperature, pH, or light have been integrated into nanoparticle design. These responsive polymer nanoparticles allow for regulated medication release, on-demand drug delivery, and tailored therapy in response to certain body conditions.
The usage of biodegradable and biocompatible polymers in nanoparticle manu­facturing, such as PLGA and chitosan, has grown. These polymers are useful for medicinal applications since they are low in toxicity. Polymer chemistry and bio­conjugation techniques advancements have enabled the production of targeted poly­mer nanoparticles. These nanoparticles have the ability to recognize specic biomarkers on cells or tissues, which improves their precision in medication deliv­ery and imaging applications. Polymer nanoparticles are rapidly being investigated for applications in personalized medicine. To enhance treatment outcomes, research­ers are designing nanoparticles suited to an individual patient’s specic needs, tak­ing genetic and molecular proles into account. Polymer nanoparticles have found use in environmental remediation, such as contaminant removal from water and soil. They are capable of effectively capturing and sequestering toxins, hence con­tributing to cleaner and safer ecosystems. Recent improvements in polymerization techniques, such as controlled/living polymerization methods and polymer nanoen­capsulation, have enhanced control over the size, shape, and characteristics of poly­mer nanoparticles (Makadia and Siegel 2011; Yang etal. 2022b).
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5.11 Future Prospects ofSynthesis ofNanoparticles Using
Biopolymers (Begines etal. 2020; Vodyashkin etal. 2022)
The prospects for manufacturing nanoparticles utilizing biopolymers and biomole­cules are bright, with several fascinating advances and applications on the horizon. Here are some signicant potential prospects for this environmentally friendly and sustainable approach:
5 Development ofNanoparticles: Recent Developments andFuture Prospects
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Tailored Nanoparticle Design:
• The progress in biopolymer and biomolecule-mediated synthesis will provide
precise manipulation of the dimensions, conguration, and attributes of nanopar-
ticles, facilitating customized designs for particular uses.
Biomedicine and Healthcare in Applications:
• Targeted drug delivery systems will benet greatly from the use of biopolymer
and biomolecule-stabilized nanoparticles. These nanoparticles will enhance
treatment effectiveness and minimize the occurrence of negative effects.
• Theranostics: The development of nanoparticles for simultaneous diagnosis and
therapy (theranostics) will continue, allowing for individualized medicine
solutions.
Environmental Remediation and Green Technologies:
• Improved Environmental Cleanup: Nanoparticles made from biopolymers and
biomolecules will be used to efciently remove pollutants such as heavy metals
from water and soil.
• Sustainable Water Treatment: Biopolymer-stabilized nanoparticles will be used
in green technologies for sustainable water purication and wastewater treatment.
Advanced Sensors and Diagnostics:
• Biopolymer and biomolecule-stabilized nanoparticles will be integrated into
sensors and diagnostic devices with higher sensitivity and selectivity for applica-
tions in healthcare and environmental monitoring.
Multifunctional Nanoparticles:
• Advanced Catalysis: Researchers will investigate the application of these
nanoparticles in catalytic reactions, which will contribute to increased efciency
and sustainability in chemical processes.
• Multifunctional Materials: The integration of versatile nanoparticles into materi-
als for many purposes, such as electronics and catalysis, will increasingly prevail.
Emerging Biopolymers and Biomolecules:
• New Sources and Materials: Researchers will continue to look into new biopoly-
mers and biomolecules in order to broaden the spectrum of materials accessible
for nanoparticle manufacturing.
• Sustainable Agriculture: Biopolymers derived from agricultural waste and
renewable sources will help to establish sustainable agricultural methods.
The use of biopolymers and biomolecules in nanoparticle production has the potential to address signicant concerns in healthcare, the environment, and materi­als science in the future. As researchers continue to improve and optimize this green synthesis approach, it is anticipated to become a cornerstone of sustainable nano­technology, addressing a wide range of global concerns.