Tag Archives: Federal University of Alagoas (UFAL)

Fungus-produced silver nanoparticles could be used to prevent and treat COVID-19

This May 6, 2025 news item on phys.org presents an intriguing possibility for COVID-19 prevention,

Silver nanoparticles produced by the fungus Trichoderma reesei could become important allies in the prevention and treatment of COVID-19. Tests carried out on hamsters showed that they not only inhibited the infection but also reduced the viral load in the lungs, easing inflammation in the rodents.

The study paves the way for the development of nasal sprays and other products to combat several viral diseases, such as HIV/AIDS, shingles and influenza.

A May 7, 2025 Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP) press release by Maria Fernanda Ziegler (also on EurekAlert but published May 6, 2025) provides more detail about the work,

Silver nanoparticles have been of interest to the pharmaceutical industry due to their high affinity for proteins. Depending on their shape and size, they attract and adhere to these molecules, inhibiting the progression of disease.

“Using computer analysis, we found that the silver nanoparticles produced in our laboratory bind to the spike protein, a kind of key that the SARS-CoV-2 virus uses to enter the host cells and replicate. In this way, they inhibit the entry of the virus into the cell by 50%,” says Roberto do Nascimento Silva, professor in the Department of Biochemistry and Immunology at the Ribeirão Preto Medical School of the University of São Paulo (FMRP-USP) in Brazil and author of the study published in the journal Current Research in Biotechnology

Tests in hamsters have shown that the effects of the product may go beyond preventing COVID-19. “The most interesting thing is that the nanoparticles not only prevented the virus from entering the cells but were also able to improve acute lung inflammation, one of the worst complications of COVID-19, proving to be a viable treatment for the disease,” he says.

The researchers found that the silver nanoparticles prevented the activation of the inflammasome – a protein complex in cells responsible for the excessive immune response (cytokine storm) in severe COVID-19 – and the production of interleukin-1beta (IL-1β), a protein involved in the inflammatory response.

“We still need to deepen our understanding of which mechanism is involved in inhibiting the inflammatory response, but given the highly inflammatory nature of COVID-19, it can be inferred that silver nanoparticles reduce this process of cell damage that’s usually associated with disease exacerbation and fatalities,” says Silva.

The work was carried out in collaboration with researchers from FMRP-USP, the Oswaldo Cruz Foundation (Fiocruz, affiliated with the Ministry of Health), the Federal University of Alagoas (UFAL) and the University of Brasília (UnB). The group obtained the silver nanoparticles from T. reesei, known for its industrial application in the conversion of cellulose – an important component of plant biomass – into glucose.

In the laboratory, the fungus begins to multiply in a low-oxygen environment, producing a series of reducing enzymes like a biofactory. These molecules transform the silver into spherical nanoparticles. It is worth noting that the enzymes and proteins present in the T. reesei culture medium act as reducing and stabilizing agents, facilitating the formation of silver nanoparticles with controllable sizes and shapes.

“The biological production of silver nanoparticles is a sustainable biotechnological solution because it avoids the use of toxic chemicals. These nanoparticles can be used in nasal spray formulations, disinfectants, antimicrobial coatings and in medical devices to prevent the spread of the virus,” he says.

Silva also points out that the study, conducted with the aim of stopping the spread of SARS-CoV-2, could serve as a basis for treating other viral diseases. “This strategy has proven to be very interesting, generating products for agriculture and the medical and pharmaceutical industries. Originally, my laboratory investigated the use of silver nanoparticles to fight breast tumor cells. With the pandemic, we focused our work on fighting SARS-CoV-2. The application is broad, and there’s already work in animal studies for HIV and the herpes virus, for example,” he says. 

Although silver is expensive, says the researcher, the production of nanoparticles can be scaled up to produce low-cost products. Another important issue is dosage. “Silver is toxic. That’s why we use a very low dosage, ten times less than what’s considered toxic to the body. And after eight weeks, the body is able to eliminate the metal from the body. So the cost-benefit is worth it,” he says. “The next step in this work is to patent a pharmaceutical formulation and start clinical trials.”

About FAPESP

The São Paulo Research Foundation (FAPESP) is a public institution with the mission of supporting scientific research in all fields of knowledge by awarding scholarships, fellowships and grants to investigators linked with higher education and research institutions in the state of São Paulo, Brazil. FAPESP is aware that the very best research can only be done by working with the best researchers internationally. Therefore, it has established partnerships with funding agencies, higher education, private companies, and research organizations in other countries known for the quality of their research and has been encouraging scientists funded by its grants to further develop their international collaboration.

Here’s a link to and a citation for the paper,

Biogenic silver nanoparticles produced by Trichoderma reesei inhibit SARS-CoV-2 infection, reduce lung viral load and ameliorate acute pulmonary inflammation by Marcus V.M.V. Amaral, Cláudia B. Carraro, Amanda C.C. Antoniêto, Mariana N. Costa, Thais F.C. Fraga-Silva, Ualter G. Cipriano, Rodrigo P.F. Abuná, Tamara S. Rodrigues, Ronaldo B. Martins, Andreia M. Luzenti, Glaucia R. Caruso, Priscyla D. Marcato, Vania L.D. Bonato, Dario S. Zamboni, Bergman M. Ribeiro, Sônia N. Báo, Joao S. da Silva, Flávio P. Veras, Roberto N. Silva. Current Research in Biotechnology Volume 9, 2025, 100277 DOI: https://doi.org/10.1016/j.crbiot.2025.100277

This paper is open access.

Fluorescent nanoparticles could transform how we visualize fingerprints

It seems to be the day for fingerprints (see the first posting “Fingerprint detection improved with carbon-coated nanoparticles” published earlier today, September 17,2024).

This new technique announced in a September 12, 2024 news item on phys.org features fluorescent nanoparticles,

Researchers created a fluorescent nanoparticle using a combination of materials (MCM-41, chitosan and dansylglycine) to examine latent fingerprints. These nanoparticles have special properties that make them adhere well to fingerprint residues, even old ones.

The nanoparticles work on various surfaces, including metal, plastic, glass and complex objects such as polymer banknotes. They have the potential to be used directly at crime scenes without lab facilities, which is a significant advantage over some previous reagents. They produce high-quality fingerprint images, with the vast majority of those tested meeting the UK Home Office standards for a successful identification.

Caption: Development of latent fingerprints. Representative images on stainless steel are shown, illuminated by and viewed under visible light (a) before development and (b) after development with MCM-41@Ch@DnsGly NPs. Corresponding images generated by illumination with UV light (λex = 365 nm) after MCM-41@Ch@DnsGly NP development are shown on (c) stainless steel, (d) glass, (e) plastic and (f) unfired brass cartridge case substrates. Credit: RSC Advances

A September 12, 2024 Diamond Light Source press release (also on EurekAlert), which originated the news item, provides more detail about the research and the international collaboration of scientists developing the new technique, Note: Links have been removed,

The research was published in a Royal Society of Chemistry paper, highlighting that the new nanomaterial has proven to be a versatile and effective tool for visualising fingermark evidence. Small angle X-ray scattering (SAXS) techniques at Diamond provided useful data to validate these results.

The research team includes scientists from the Technical and Scientific Section of Alagoas, Federal Police, Brazil; the National Institute of Criminalistics of the Federal Police, Brazil; the University of Leicester’s School of Chemistry; the Federal University of Alagoas, Brazil; and the UK’s national synchrotron, Diamond Light Source. 

Ridge patterns on fingertips remain unchanged during and beyond a person’s life. They provide the primary method of personal identification in criminal investigations. When an object’s surface is touched by a finger, sweat and oily substances are transferred and deposited onto the surface, resulting in the formation of a mark. Most fingermarks are invisible to the naked eye and are referred to as latent fingermarks.

The international collaboration of researchers developed the new nanostructured hybrid material, MCM-41@chitosan@dansylglycine, to visualise latent fingermarks. This material combines mesoporous silica nanoparticles with a fluorescent dye (dansylglycine) and chitosan, a polysaccharide derived from the exoskeletons of shrimps, crabs and lobsters.

Latent fingermarks require physicochemical development techniques to enhance their visibility and make them interpretable for forensic purposes. Traditional methods for developing fingerprints include optical, physical, and chemical processes that involve interaction between the developing agent (often a coloured or fluorescent reagent) and the fingermark residue. These methods have limitations in recovering high-quality results in certain conditions.

Recently, new methods using mass spectrometry, spectroscopy, electrochemistry, and nanoparticles have improved the development of latent fingermarks. These techniques offer better contrast, sensitivity, and selectivity, with low toxicity. The ability to adjust nanomaterial properties further enhances the detection of both fresh and aged fingermarks.

Mesoporous silica nanoparticles (MSNs) have attracted significant interest since the discovery of the M41S family of molecular sieves, which encompasses MCM-41, MCM-48, and SBA-15. These nanoparticles are characterised by their controlled particle size, porosity, high specific surface area, chemical stability, and ease of surface functionalisation.

Profa. Adriana Ribeiro, Federal University of Alagoas comments: “There are few studies employing chitosan for detection and enhancement of latent fingerprints and, to the best of our knowledge, no reports of the use of hierarchically structured MSNs modified with chitosan (MSN@Ch) for such applications – which was our strategy in this research. We exploited the MCM’s desirable characteristics – notably high surface area and surface modification – for the case of MCM-41 to enhance the interaction between the development reagent and fingerprint residue.”

The team added dansyl fluorophores which exhibit intense absorption bands in the near UV region and emit strong fluorescence in the visible spectrum with high emission quantum yields.

Professor of Physical Chemistry, Robert Hillman, University of Leicester concludes: “The overarching aim of this study was to create a versatile and effective latent fingermark visualisation material based on MSNs, chitosan and dansyl derivatives. These nanoparticles were applied as latent fingermark developers for marks on surfaces of diverse chemical composition, topography, optical characteristics and spatially variant nature, typical of forensically challenging evidence. For quality assessment of the enhanced fingermarks, we analysed the developed images using the UK Home Office scale, forensic protocols and, in terms of their constituent features, (minutiae), specialist forensic software. Across a substantive collection of marks deposited on chemically diverse surfaces and subject to complex environmental and temporal histories, the overwhelming majority of the enhanced images presented sufficient minutiae for comparison with model dactyloscopy images.”

Diamond Light Source CEO Prof. Gianluigi Botton adds: “It is pleasing to see that Diamond’s unique analytical tools once again have delivered outstanding science. Our network of international users is key to making sure our science delivers results. This advance in nanomaterials could be a step change in how forensics may be applied in the future.”

Diamond Light Source provides industrial and academic user communities with access to state-of-the-art analytical tools to enable world-changing science. Shaped like a huge ring, it works like a giant microscope, accelerating electrons to near light speeds, to produce a light 10 billion times brighter than the Sun, which is then directed off into 33 laboratories known as ‘beamlines’. Additionally, Diamond offers access to several integrated laboratories including the world-class Electron Bio-imaging Centre (eBIC) and the Electron Physical Science Imaging Centre (ePSIC).  

Diamond serves as an agent of change, addressing 21st century challenges such as disease, clean energy, food security and more. Since operations started, more than 16,000 researchers from both academia and industry have used Diamond to conduct experiments, with the support of approximately 760 world-class staff. Almost 12,000 scientific articles have been published by its users and scientists.  

Funded by the UK Government through the Science and Technology Facilities Council (STFC), and by the Wellcome Trust, Diamond is one of the most advanced scientific facilities in the world, and its pioneering capabilities are helping to keep the UK at the forefront of scientific research.  

Diamond was set-up as an independent not for profit company through a joint venture, between the UKRI’s Science and Technology Facilities Council and one of the world’s largest biomedical charities, the Wellcome Trust – each respectively owning 86% and 14% of the shareholding.  

The University of Leicester is led by discovery and innovation – an international centre for excellence renowned for research, teaching and broadening access to higher education. It is among the Top 30 universities in the Times Higher Education (THE)’s Research Excellence Framework (REF) 2021 rankings with 89% of research assessed as world-leading or internationally excellent, with wide-ranging impacts on society, health, culture, and the environment. In 2023, the University received an overall Gold in the Teaching Excellence Framework (TEF) 2023, making it one of a small number of institutions nationally to achieve TEF Gold alongside a top 30 REF performance. The University is home to more than 20,000 students and approximately 4,000 staff.

Federal University of Alagoas (UFAL) Located in the city of Maceió, the Federal University of Alagoas (UFAL) is the major University in coastal state Alagoas.  It is currently considered one of the main research centers in the Brazilian Northeast region. The Federal University of Alagoas (UFAL) is a national reference in teaching, research and extension activities, establishing itself as an excellent support for the demands of society. It is the largest public higher education institution in the state of Alagoas and was ranked 49th among the best universities in Brazil in the 2023 edition of the World University Rankings (CWUR).  One of the reasons for reaching this level was the impact of institutional support and investment in research. All of this is the result of the prioritization of research at the University over the last four years, which is reflected in quality teaching and service. UFAL has 82.1% of its publications with national and international collaboration. And most of the citations were from works produced with researchers from other countries.

Here’s a link to and a citation for the paper,

Dansyl fluorophore functionalized hierarchically structured mesoporous silica nanoparticles as novel latent fingerprint development agents by Lais F. A. M. Oliveira, Lais V. A. T. da Silva, Artur F. Sonsin, Meclycia S. Alves, Cristiane V. Costa, Jeane C. S. Melo, Nicholas Ross, Paul T. Wady, Thomas Zinn, Ticiano G. do Nascimento, Eduardo J. S. Fonseca, Alexandro M. L. de Assis, A. Robert Hillman and Adriana S. Ribeiro. RSC Adv., 2024,14, 22504-22512 DOI: DOI: https://doi.org/10.1039/D4RA03074E First published: 17 Jul 2024

This article is open access.