Nanocarriers for cutting-edge cancer immunotherapies DOI Creative Commons
Joyce Hu, Pooria Mohammadi Arvejeh,

S Bone

et al.

Journal of Translational Medicine, Journal Year: 2025, Volume and Issue: 23(1)

Published: April 15, 2025

Cancer immunotherapy aims to harness the body's own immune system for effective and long-lasting elimination of malignant neoplastic tissues. Owing advance in understanding cancer pathology immunology, many novel strategies enhancing immunological responses against various cancers have been successfully developed, some translated into excellent clinical outcomes. As one promising strategy next generation immunotherapies, activating multi-cellular network (MCN) within tumor microenvironment (TME) deploy multiple mechanisms action (MOAs) has attracted significant attention. To achieve this effectively safely, delivering or pleiotropic therapeutic cargoes targeted sites cancerous tissues, cells, intracellular organelles is critical, which numerous nanocarriers developed leveraged. In review, we first introduce payloads categorized according their predicted functions physicochemical structures forms. Then, nanocarriers, along with unique characteristics, properties, advantages, limitations, are introduced notable recent applications immunotherapy. Following discussions on targeting strategies, a summary each nanocarrier matching suitable provided comprehensive background information designing regimens.

Language: Английский

Nanoparticles in cancer theragnostic and drug delivery: A comprehensive review DOI Creative Commons

Alshayma N. Al-Thani,

Asma Ghafoor Jan,

Mohamed Abbas

et al.

Life Sciences, Journal Year: 2024, Volume and Issue: 352, P. 122899 - 122899

Published: July 9, 2024

This comprehensive review provides an in-depth analysis of how nanotechnology has revolutionized cancer theragnostic, which combines diagnostic and therapeutic methods to customize treatment. The study examines the unique attributes, uses, difficulties linked different types nanoparticles, including gold, iron oxide, silica, Quantum dots, Carbon nanotubes, liposomes, in context In addition, paper progression nanotheranostics, emphasizing its uses precise medication administration, photothermal therapy, sophisticated such as MRI, CT, fluorescence imaging. Moreover, article highlights capacity nanoparticles improve effectiveness drugs, reduce overall toxicity body, open up new possibilities for treating by releasing drugs a controlled manner targeting specific areas. Furthermore, it tackles concerns regarding compatibility their potential harmful effects, significance continuous nanotherapeutic use medical treatments. finishes outlining future applications predictive oncology customized medicine.

Language: Английский

Citations

73

Metal/metal oxide nanoparticles: A revolution in the biosynthesis and medical applications DOI

Roberta Anjos de Jesus,

Geovânia Cordeiro de Assis, Rodrigo de Oliveira

et al.

Nano-Structures & Nano-Objects, Journal Year: 2023, Volume and Issue: 37, P. 101071 - 101071

Published: Nov. 22, 2023

Language: Английский

Citations

61

Recent nanotheranostic approaches in cancer research DOI Creative Commons
Deepshikha Gupta, Priyanka Roy, Rishabh Sharma

et al.

Clinical and Experimental Medicine, Journal Year: 2024, Volume and Issue: 24(1)

Published: Jan. 19, 2024

Abstract Humanity is suffering from cancer which has become a root cause of untimely deaths individuals around the globe in recent past. Nanotheranostics integrates therapeutics and diagnostics to monitor treatment response enhance drug efficacy safety. We hereby propose discuss all imaging diagnostic tools, mechanism targeting tumor cells, current nanotheranostic platforms available for cancer. This review discusses various agents novel molecular tools like MRI, CT, PET, SPEC, PAT used diagnostics. Emphasis given gold nanoparticles, silica, liposomes, dendrimers, metal-based agents. also highlight limitations different field research treatment. Due complexity this area, multifunctional hybrid nanoparticles functionalized with targeted moieties or anti-cancer drugs show best feature theranostics that enables them work on carrying delivering active materials desired area requirement early detection diagnosis. Non-invasive techniques have specificity receptor binding internalization processes nanosystems within cells. may provide appropriate medicine at dose patient time. Graphical abstract

Language: Английский

Citations

46

Emerging Trends in the Application of Green Synthesized Biocompatible ZnO Nanoparticles for Translational Paradigm in Cancer Therapy DOI Creative Commons
Shaikh Sheeran Naser, Basab Ghosh, Faizan Zarreen Simnani

et al.

Journal of Nanotheranostics, Journal Year: 2023, Volume and Issue: 4(3), P. 248 - 279

Published: July 1, 2023

Zinc oxide nanomaterials have been the cynosure of this decade because their immense potential in different biomedical applications. It includes usage prognosis and treatment infectious cellular diseases, owing to peculiar physiochemical properties such as variable shape, size, surface charge etc. Increasing demand ZnO raise concerns about molecular toxicity biocompatibility with human cells. This review comprehensively details for Furthermore, toxicological types systems reviewed. Moreover, biocompatible efficacy cancer specific pathways has discussed. offers insights into current scenario signifies future extension on environmental

Language: Английский

Citations

43

Influence of Physicochemical Properties of Iron Oxide Nanoparticles on Their Antibacterial Activity DOI Creative Commons
Kishan Nandi Shoudho, Shihab Uddin, Md. Mahamudul Hasan Rumon

et al.

ACS Omega, Journal Year: 2024, Volume and Issue: 9(31), P. 33303 - 33334

Published: July 25, 2024

The increasing occurrence of infectious diseases caused by antimicrobial resistance organisms urged the necessity to develop more potent, selective, and safe agents. unique magnetic tunable properties iron oxide nanoparticles (IONPs) make them a promising candidate for different theragnostic applications, including Though IONPs act as nonspecific agent, their activities are directly or indirectly linked with synthesis methods, synthesizing precursors, size, shapes, concentration, surface modifications. Alteration these parameters could accelerate decelerate production reactive oxygen species (ROS). An increase in ROS role disrupts bacterial cell walls, membranes, alters major biomolecules (e.g., lipids, proteins, nucleic acids), affects metabolic processes Krebs cycle, fatty acid synthesis, ATP glycolysis, mitophagy). In this review, we will investigate antibacterial activity bare surface-modified influence physiochemical on activity. Additionally, report potential mechanism IONPs' action driving

Language: Английский

Citations

18

Artificial Intelligence Enabled Biomineralization for Eco‐Friendly Nanomaterial Synthesis: Charting Future Trends DOI Creative Commons

Vaisali Chandrasekar,

Anu Jayanthi Panicker,

Ajay Vikram Singh

et al.

Nano Select, Journal Year: 2025, Volume and Issue: unknown

Published: Jan. 30, 2025

ABSTRACT The applications of nanoparticles (NPs) have shown tremendous growth during the last decade in field biomedicine. Although chemical and physical methods dominate large‐scale NP synthesis, such are also known for their adverse impact on environment health. In contrast, use biological systems provides a sustainable alternative producing functional NPs by biomineralization process. transformative power artificial intelligence (AI) has been proven prudent diagnosis, drug development, therapy, clinical decision‐making. AI can be utilized tailored design, scale‐up biomedical applications. present review an overview process its advantages over other eco‐friendly synthesis opportunities. Specific emphasis is provided application cancer therapy how biologically compatible improve management. Finally, to best our knowledge, potential integrating comprehensively analyzed first time. Additionally, help surpass conventionally synthesized toxicity toxicology material science provided.

Language: Английский

Citations

4

Biomolecule-based engineered nanoparticles for Cancer Theranostics DOI

Narayanan Parthasarathy,

Ramar Thangam, Babu Rithisa

et al.

Coordination Chemistry Reviews, Journal Year: 2025, Volume and Issue: 530, P. 216489 - 216489

Published: Feb. 3, 2025

Language: Английский

Citations

2

Stimuli responsiveness of recent biomacromolecular systems (concept to market): A review DOI
Davinder Singh, Yashika Sharma, Divya Dheer

et al.

International Journal of Biological Macromolecules, Journal Year: 2024, Volume and Issue: 261, P. 129901 - 129901

Published: Feb. 3, 2024

Language: Английский

Citations

15

Theranostic nanogels: multifunctional agents for simultaneous therapeutic delivery and diagnostic imaging DOI Creative Commons
Ismail Altinbasak,

Yasin Alp,

Rana Sanyal

et al.

Nanoscale, Journal Year: 2024, Volume and Issue: 16(29), P. 14033 - 14056

Published: Jan. 1, 2024

Theranostic nanogels are indispensable modular platforms that enable a combined approach to therapy and diagnostics address challenges in the treatment of complex dynamic diseases such as cancer.

Language: Английский

Citations

14

Recent Trends in Curcumin-Containing Inorganic-Based Nanoparticles Intended for In Vivo Cancer Therapy DOI Creative Commons
Douglas Dourado, Júlio Abreu Miranda, Matheus de Oliveira

et al.

Pharmaceutics, Journal Year: 2024, Volume and Issue: 16(2), P. 177 - 177

Published: Jan. 26, 2024

Curcumin is a natural compound that has been widely investigated thanks to its various biological properties, including antiproliferative. This molecule acts on different cancers such as lung, breast, pancreatic, colorectal, etc. However, the bioactive actions of curcumin have limitations when physicochemical properties compromise pharmacological potential. As therapeutic strategy against cancer, associated with inorganic nanoparticles. These nanocarriers are capable delivering and offering synergistically enhance anticancer properties. review highlights types curcumin-based nanoparticles discusses their in vivo activity models cancer.

Language: Английский

Citations

9