Showing posts with label journal of nanoscience and nanotechnology. Show all posts
Showing posts with label journal of nanoscience and nanotechnology. Show all posts

Wednesday, 12 February 2020

Lupine Publishers| Multi-Purpose Functional Materials Based on Thermosensitive Poly (N-vinylcaprolactam)

Lupine Publishers| Journal of Nano medicine



Introduction

Worldwide mortality rates have experienced a remarkable decline in recent decades, a trend that projects to continue over the next years, increasing the older population. As a result of increased life expectance, people are living more and better. Virtually every country in the world is experiencing growth in the number and proportion of elderly people. Dealing with the population growth, its aging and treatments of typical health problems found in older people are just some of urgent demands for near future. Particularly, several developing countries are experimenting a fast transition from young to old population, which is affecting their national health system and families budgets. Getting older bring senior health challenges.
Typical chronical diseases are arthritis, circulatory problems, cancer, osteoporosis, diabetes, problems of locomotion due to trauma and falls, as well as oral healthy. On the other hand, “lifestyle” diseases related to tobacco and alcohol abuse accounts for a rising share of deaths of relatively young people. Additionally, non communicable diseases, such as circulatory-system ailments, cancers, and psychiatric disorders, are expected to replace infectious diseases and child malnutrition as the greatest contributors to the global disease burden [1]. During the last decade, nanotechnology revolutionized human life in aspects never though by Feynman in its famous conference “There´s plenty of room at the bottom” [2]. The possibility to induce, enhance or modify properties of materials used in our ordinary life or in incredibly sophisticated applications opened a new road for creative technologies in materials science, chemistry and medicine.
Nanotechnology is one of the promising fields for engendering new applications in energy, environmental and health, which represent three of the greatest challenges facing humanity in this century. By assembling materials at the nano scale, exceptional properties improvements can be obtained, which play a strategic role in our technological society3touching aspects that are quite far from our eyes. Selective biosensors for cancer cells, smart nano composites for transport and drug delivery, functional nanoparticles for cancer therapy and image, scaffolds for tissue engineering, and nano structured materials for implants, bones prosthesis and dental uses, can be used as good examples of effective bio functional materials based on nanotechnology.
The design and discovery of new functional materials involve a mixture of clever chemical intuition, rational assessment of the technical requirements, and substantial experimental efforts [4]. The complete development cycle, from scientific concept to marketing practice, takes time and requires a huge amount of resources. Once the material is sufficiently understood, new applications in different commercial fields is just a matter of creative and boldness. For instance, we successfully developed a nontoxic thermosensitive hydrogel based on poly (N-vinylcaprolactam) with a lower critical solution temperature (LCST) (Figure 1) [5]. This hydrogel (also referred to as PNVCL) exhibits a phase transition near the body temperature from a hydrophilic and water-soluble phase at low temperatures to an insoluble hydrophobic state when heated.
Its cyto compatibility and fast response to temperature stimuli allow its use as injectable hydrogel for tissue engineering [1]. Changes in the PNVCL molecular weight and concentration enabled the development of hydrogels with tunable mechanical properties and fast gelation times to support cartilage specific extracellular matrix production both in vitro and in vivo. PNVCL can also be obtained by initiated chemical vapor deposition on substrates for cell sheet engineering, excluding the use of conventional enzymatic treatments [2]. [6]Thermosensitive hydrogels are also suitable for drug delivery systems, including those modified with magnetic nanoparticles against pathogenic oral bio films, usually employing well-known antibiotics such as chlorhexidine but also some flavonoids and antimicrobial peptides [3]. The replacement of injured or malfunctioning natural organs or tissues by a natural substitute requires transplantation of an acceptable, healthy substitute.

Figure 1: Multi-purpose functional materials can be applied in different uses. Thermosensitive poly (N-vinylcaprolactam), for example, has been used as injectable hydrogel for tissue engineering (1), as substrates for cell growth (2), in drug delivery systems (3), as scaffolds to fabricate ‘bio artificial’ or ‘bio hybrid’ synthetic organs (4), as functional nano composites (5), smart windows (6), and for dentistry treatments (7).
Lupinepublishers-openaccessjournals-Nanotechnology-nanomedicine
According to World Health Organization,7 126.670 of solid organs were transplanted in 2014, which is less than 10% of global needs. Almost 25% of all transplants occurred in USA, followed by China (7,9 %), Brazil (6,2 %) and France (4,5 %).In fact, hydrogels can be used for engineered tissue scaffolds or to fabricate ‘bio artificial’ or ‘bio hybrid’ synthetic organs due to their unique compositional and structural similarities to the natural extracellular matrix to repair organs injuries and regenerate organs [4]. Beyond complexes uses for health, thermosensitive hydrogels can be modified using functional nanoparticles, such as noble metal, magnetic ferrites, bioactive glasses or porous silica for different purposes, from drug transport and delivery, coatings for packaging, biosensors or optical applications [5], which include passive and active thermo tropic devices used in smart windows [6].
Finally, special attention should be dedicated for dental applications against C. albicans and S. mutans biofilms, cariogenic species generally responsible for dental caries. Perhaps the greatest challenge to obtain effective multi-purpose functional materials is to build a multidisciplinary collaboration network of chemists, engineers, dentists, biologists, physicians from academy but including also marketing experts and professionals from industry. Innovative ideas and creative solutions are at interfaces among specialties.



Friday, 31 January 2020

Lupine Publishers| Nano Toxicity: Due to Drug Delivery and Environmental Exposure



Lupine Publishers | Journal of Nanomedicine

Abstract
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Nanotechnology is undergoing a vast expansion in materials science, Research and Development. Nano scientists are focusing on synthesis and development of nanoparticles, nanomaterials, and bio nano composite materials. The drug delivery is also a recent development where in bio nano materials are being used for diagnosis of the various diseases. The synthesis of nanomaterials at large scale causes health risk due to the exposure via inhalation, skin contacts and ingestion; based on the characterisation of bio nano materials. The use of bio nanomaterials in drug delivery as well as the environment exposure during the large-scale synthesis of nanomaterials, the bio nanomaterials into human body.The exact mechanisms, chemical reactivity and enzymatic reaction is not well understood, documented, and studied. Therefore, the intake bio nanomaterials via drug delivery or environment exposure amounts to health risk and need to be studied in detail.
Introduction
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Nanosciences and Nanotechnology is the study and use of nanomaterials falls in the range of 0.1nm to 100nm which corresponds to 0.2nm- water molecule, 7nm-haemoglobin, 10-100nm - virus, -1μm - microbial cells and >2μm - protozoa. The synthesized and developed nanoparticles, nanomaterials, and Bio nanomaterials are being used in various fields. The recent advances in the field of material sciences include the synthesis of Bio nano material for use in drug delivery. Bio nanotechnology companies are designing drugs for various diseases such as heart disease, kidney stones, and cancer cosmetic generic products using a short fragment of DNA as a new type of drugs. These drugs are assembled in nano chips and as nanoparticles for delivering into human body and are effective in using the sick/diseased and healing the injuries. Bio nano products are diverged as bio chip and Nano medicine, bio nanotechnology products which include Nano medicine, nano material, micro detectors, Nano sensors and herbal medicine [1].
Drug nano crystals are particles made from 100% drug; typically, surfactants or polymeric steric stabilizers stabilize them. These particles possess a 100% drug loading in contrast to matrix nanoparticles consisting of a polymeric matrix (polymeric nanoparticles or a lipidic matrix i.e. Nano emulsions, liposomes | or lipid nanoparticles. Thus, the high loading makes them very efficient in transporting drug to or into cells, reaching a sufficiently high therapeutic concentration for the pharmacological effect [4-8].
Health Risk
The scientific evidence demonstrates the potential for nano material to be toxic to the humans or the environment; therefore, synthesis of nanoparticles and bio nano composites and their use causes health risk due to intake – drug delivery and environment exposure that need to be studied before making the wider application of bio nanomaterials. The smaller a particle, the greater it’s surface area to volume ratio and the higher its chemical reactivity and biological activity. The extremely small size of nanomaterials also means that they are more rapidly taken up by the human body than larger sized particles. Nanomaterials can enter into the body through inhalation, ingestion or skin contacts. Nanomaterials are able to cross biological membranes and access cell tissues and organs. The greater chemical reactivity of nanomaterials results in increased production of reactive oxygen species, including free radicals. Reactive oxygen species and free radical product is one of the primary mechanisms of nanoparticles toxicity. Other properties of nanomaterials that influence toxicity include chemical composition, shape, surface structure, surface charge, aggregation and solubility and the presence or absence of functional groups of other chemicals [9-11].
Mode of entry of Nano particle:
The Nano particle ranges between 1nm to 100nm which can enter into the body through inhalation, skin contact and ingestion. The synthesis of nano particle at large scale will cause exposure through these routes.
a. Inhalation:
Inhalation is the most important route for the intake of airborne nano particle. Depending on the size, particles are trapped in mucous layer and alveoli. For nano particle the position is more complex. Particles of 1 micron diameter or more tend to be deposited, but only those less than 7.0 microns, deposit deep inside the lungs. Those more than 7.0 micron deposit in the conductive airways. Particles in size less than 0.1 micron deposit in the alveolus. Most of the particles between 0.1 and 0 micron size are exhaled. The pattern and depth of breathing and irritant effects of inhaled material may alter the deposition of particles and may remain permanently within the lung tissue.
b. Skin contact:
The large scale synthesis of nano particles in industry for wider application will cause exposure of nano particle through skin absorption; the penetration of nano particle through skin occurs via lipids and dissolved material. Lipid solubility and molecular size are the most important factors, so that higher lipid solubility and small molecular size enhance penetration through skin. Abrasion and irritation also encourage penetration. This route is particularly important for organic solvents and can occur in a number of ways.
(i) Direct absorption through wounds or abrasions.
(ii) Degreasing of the skin followed by absorption of the degreasing agents.
(iii) Degreasing of the skin allowing absorption of other chemicals.
(iv) Sensitisation, local and general.
b. Skin contact:
Ingestion of nano materials during the process of synthesis may result from the contaminated object into the mouth. Ingestion of toxic substance along with food in the workroom occurs where housekeeping is not good, or where workers are careless to nano particles in their clothes, or wash their hands with soap. If the toxic nano dust swallowed with food or saliva is not soluble in body fluids, it is eliminated directly through the intestinal tract. Toxic materials that are readily soluble in body fluids are absorbed in the digestive system and circulated by the blood. Compared with inhalation and skin absorption, ingestion, plays a minor role in the absorption of toxic materials in industries [2-3].
Toxicity of Nanomaterials
The intake of bio nanomaterials in human body undergoes biochemical mechanism and enzymatic interaction and height cause. Toxicity of nano particles depending on nature of chemical used for the synthesis, type of precursor, concentration of precursor, duration of exposure, personal susceptibility, and mode of entry, size of nano particle, environmental factors, and threshold limit value.
Conclusion
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The drug delivery is one of the routes for treating diagnosis using the bio nano material. The exact fate of bio chemical reactivity, enzymatic interaction is not well understood and studied and might lead to toxicity similar to that of exposure of nano material through inhalation, skin contact and ingestion. Therefore, synthesis of nano particle, bio nano composite, their use and environmental exposure need to be studied before making the wider application for the diagnosis of disease using bio nano materials. The detail of physico chemical characteristics, stability of nanomaterials and their specification to target organs as human body system need data base scientific research.

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Friday, 10 May 2019

Nanotechnology peer reviewed articles- Lupine Publishers


Nicardipine (NCD) is the dihydropyridine class of calcium channel blockers. This study exits a concise review of analytical methods for the quantification of NCD in pharmaceutical preparations and biological fluids. NCD accessible single or in combination with added drugs in pharmaceutical matrices with many drugs like nifedipine, isradipine, veramipril, amlodipine and Aliskiren. They include numerous analytical techniques defined in this study for NCD were high-performance liquid chromatography (HPLC), UV-spectrophotometry, spectrofluorometry, electrochemical methods and liquid chromatography-mass spectroscopy (LCMS). The concise review explains the percentage utilization of the various approaches for analysis of NCD.


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Friday, 3 May 2019

Nanotechnology peer reviewed articles- Lupine Publishers

Recent Development Issues in Nanotechnology for Gas Storage by Emad Yousif in ANOAJ in Lupine Publishers

Nanomaterials and their derived sub-groups are emerging into the advanced materials field due to their high free porous volume, structural regularity, robustness, hydrothermal stability, and functional variety. They present high gas uptake capacities and presence of stabilized active functions in the framework. A significant technical challenge has been recognized as the development of a viable method to efficiently trap hydrogen, methane and carbon dioxide gas molecules in a confined space for various applications.

https://lupinepublishers.com/nano-science-nano-technology-journal/fulltext/recent-development-issues-in-nanotechnology-for-gas-storage.ID.000121.php

For more Lupine Publishers Open Access Journals Please visit our website: http://www.lupinepublishers.com/

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Friday, 8 March 2019

Journal of Nanomedicine-Lupine Publishers



Green synthesis for nanoparticles using microorganisms, enzymes, and plants leaf or plant extracts have been indicated as possible ecofriendly preferences to chemical and physical methods. In this paper, we report the synthesis of zinc oxide particles by green method. Highly stable and hexagonal zinc oxide nanoparticles were produced by using zinc nitrate and green tea leaf extract. Structural, morphological and optical properties of the synthesized nanoparticles have been characterized by using UV–Vis spectrophotometer, FTIR, SEM, and XRD analysis. The synthesis of nanoparticles of zinc oxide was observed by the color changing of the chemical solution. Powder X-ray diffraction and SEM analysis revealed the synthesis of both Zn and ZnO nanoparticles with average particle size of 60nm. Shape of zinc oxide nanoparticles was hexagonal with the range 80-120nm. UV spectra confirmed the presence of zinc oxide nanoparticles. FTIR showed the peaks of zinc oxide nanoparticles as well as the presence of other compounds. Melachite green dye has been removed by using zinc oxide nanoparticles prepared from green tea leaf extract. The green color of the dye was removed up to 70% with the use of reducing agent sodium borohydrate. Removal of melachite green dye was performed. Other applications of zinc oxide nanoparticles in the medicine, pharma, biotechnology and industries were discussed.

https://lupinepublishers.com/nano-science-nano-technology-journal/fulltext/removal-of-melachite-green-dye-by-using-zinc-oxide-nanoparticles-prepared-by-the-green-synthesis-by-using-camellia-sinensis.ID.000120.php

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Wednesday, 26 December 2018

Application of Nanomaterials as Antimicrobial Agents: A Review:(ANOAJ)-Lupine Publishers



Application of Nanomaterials as Antimicrobial Agents: A Review by Muhammad Ali in ANOAJ in Lupine Publishers.

Bacterial strains resistant to the antibiotics now in use have becomes serious public health problems that increases the need to develop new bactericidal materials. Consequently, there is a strong demand for developing novel strategies and new materials that can cope with these problems. The emergence of nanotechnology has created many new antimicrobial options. The small size of the nanoparticles is very suitable for carrying out antimicrobial biological operations. Metals such as silver, zinc, copper and iron nanoparticle types have shown tremendous potential as bactericidal and fungicidal elements, demonstrating their potential as efficient antibiotic reagents in wound care and related medical issues. These nanomaterials displayed antimicrobial activity against numerous pathogenic viral and bacterial species. Nanomaterials today are a promising platform for alternative measures to control bacterial infections as they offer prolonged antimicrobial activity with negligible toxicity, compared with small molecular antimicrobial agents that display short term activity and environmental toxicity. The antimicrobial nanoparticle physically destroys cell membranes of the organism which prevent development of drug-resistance microbes.
For more Lupine Publishers Open Access Journals Please visit our website: http://www.lupinepublishers.com/

Monday, 24 December 2018

Potential of Carbon Nanotubes in Enhance of Photocatalyst Activity:(ANOAJ)-Lupine Publishers


Potential of Carbon Nanotubes in Enhance of Photocatalyst Activity by Emad Yousif in ANOAJ in Lupine Publishers.

Carbon nanotubes (CNTs) have generated huge activity in most areas of science and engineering due to their remarkable physical and chemical properties. No previous materials have displayed the combination of superlative mechanical, thermal and electronic properties attributed to them. These properties make nanotubes ideal, not only for a wide range of applications but as a test bed for fundamental science. This review highlighted some of the properties of these nanotubes and also their role as supports materials in enhance of photocatalytic activity of nanocrystals for removal of contaminants.




Thursday, 20 December 2018

Printable Self-Assembled Peptide Bio-Inks: Promising Future Applications in Nanomedicine :(ANOAJ) - Lupine Publishers

Printable Self-Assembled Peptide Bio-Inks: Promising Future Applications in Nanomedicine  by

Apurba K Das in ANOAJ in Lupine Publishers.


In the current era of research and development, nanotechnology and additive manufacturing play a key role in the industry as well as in the healthcare applications. In order to explore medicinal applications, researchers focus on the design and synthesis of biocompatible nanoparticles and nanomaterials. Molecular self-assembly is a powerful approach for the fabrication of supramolecular functional materials. Self-assembly offers the integration of nanotechnology with the additive manufacturing for the fabrication of three dimensional (3D) printed objects. The cross-linked peptide hydrogels are gaining attention as potential bioink for the 3D bio-fabrication. The current article focuses on the scope of the printable peptide containing hydrogels as bio-ink in the fields of nanomedicine, drug delivery and tissue engineering.




Tuesday, 18 December 2018

Nanotechnology in Cancer: an Overview on Importance of Patient’s Screening in Nanomedicine Based Combinational Therapies by Bikash Medhi:(ANOAJ)-Lupine Publishers



Nanotechnology in Cancer: an Overview on Importance of Patient’s Screening in Nanomedicine Based Combinational Therapies by Bikash Medhi in ANOAJ in Lupine Publishers

Targeting cancer using nanomedicine is not a new concept. Earlier focus was on targeted therapy and then concept came of combinational therapy. Along with the use of combinational therapies, Pre-selection screening of the patients using molecular approach is equally important to achieve the maximum benefit to the cancer patients.

https://www.lupinepublishers.com/nano-science-nano-technology-journal/fulltext/nanotechnology-in-cancer-an-overview-on-importance-of-patients-screening-in-nanomedicine-based-combinational-therapies.ID.000112.php

https://www.lupinepublishers.com/nano-science-nano-technology-journal/abstracts/nanotechnology-in-cancer-an-overview-on-importance-of-patients-screening-in-nanomedicine-based-combinational-therapies.ID.000112.php

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https://www.lupinepublishers.com/nano-science-nano-technology-journal/

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