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Date: 2025-06-17 Category: Not Applicable State: Union Government Country: India

A simplified method to synthesize nano-cups that can blaze the cancer with heat

Issued by Ministry of Science and Technology · Not Applicable

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**Summary:** Researchers have developed a novel, simplified, one-step colloidal synthesis method for producing polyethylene glycol (PEG)-modified semishell (SS) nanoparticles with nanocup morphology for photothermal therapy (PTT) of cancer. This method, developed by scientists from the Institute of Nano Science and Technology (INST), Mohali, in collaboration with researchers from ACTREC, Tata Memorial Centre and IIT Bombay, utilizes a biocompatible metal-organic framework (MOF), ZIF8, as a sacrificial template and ascorbic acid (Vitamin C) as a mild reducing agent at room temperature, eliminating the need for harsh chemicals and specialized equipment. The resulting PEGylated SS exhibit enhanced cryopreservability, aqueous stability, and blood compatibility, ensuring safe intravenous administration and extended shelf life. Preclinical studies have demonstrated the SS's high photothermal conversion efficiency and therapeutic efficacy in destroying metastatic breast tumors via photothermal ablation, significantly improving survival rates and minimizing tumor relapse in mice models. Future research will focus on exploring chemophotothermal therapy and the potential of these SS in Surface-Enhanced Raman Spectroscopy (SERS) biosensing.

Key Entities Referenced

Ministry of Science Technology: Indian government ministry responsible for science and technology. nanocups: Nanomaterials synthesized for cancer treatment. PIB Delhi: Press Information Bureau, Delhi. polyethylene glycol PEG: Material used in nanoparticle synthesis for photothermal therapy. photothermal therapy PTT: A method to treat cancer. Institute of Nano Science and Technology INST, Mohali, Punjab: An autonomous institute under the Department of Science and Technology (DST). Department of Science and Technology DST: Indian government department. Advanced Centre for Treatment Research Education in Cancer, Tata Memorial Centre ACTREC: Cancer research and treatment center. Indian Institute of Technology Bombay IITB: An Indian Institute of Technology located in Bombay. Communication Chemistry: An open access Nature group journal. rhombic dodecahedron RD: Shape of ZIF8 used as a sacrificial template. ZIF8: A biocompatible metalorganic framework MOF used as a sacrificial template. ascorbic acid Vitamin C: A mild reducing agent used in the synthesis of nanocups. SurfaceEnhanced Raman Spectroscopy SERS: A technique for biosensing.
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Ministry of Science & Technology A simplified method to synthesize nano-cups that can blaze the cancer with heat Posted On: 17 JUN 2025 5:55PM by PIB Delhi Researchers have developed a novel one-step colloidal synthesis method for nanoparticles with a unique shell structure with nano-cup morphology that is partly covered with polyethylene glycol (PEG) that can help with photothermal therapy (PTT) to treat cancer. Conventional fabrication techniques of these so-called semi shells (SS) with nano-cup morphology are multi-step, labour-intensive, or require harsh etching agents like hydrofluoric acid at high temperatures and toxic precursors. Scientists from the Institute of Nano Science and Technology (INST), Mohali, an autonomous institute under the Department of Science and Technology (DST), in collaboration with researchers from Advanced Centre for Treatment Research & Education in Cancer, Tata Memorial Centre (ACTREC) and Indian Institute of Technology Bombay (IITB), have developed a novel one-step colloidal synthesis method for fabricating PEGylated semi-shells (SS) with nano-cup morphology at room temperature. The research published in Communication Chemistry, an open access Nature group journal involved optimizing synthesis parameters, characterizing optical and structural properties, and conducting extensive in vitro and in vivo assessments to confirm the therapeutic efficacy of SS. Fig: Illustration of semi-shell formation using rhombic dodecahedron (RD) shaped ZIF-8 as a sacrificial template and its PEGylation-assisted blood compatibility, cryopreservation, systemic safety and on-demandreconstitution towards pronounced photothermal therapy of advanced cancer. The simplified yet highly unique approach circumvents all the drawbacks of previously reported processes by using a biocompatible metal-organic framework (MOF), ZIF-8, as a sacrificial template. The synthesis employs mild reducing agents like ascorbic acid (Vitamin C) at room temperature. The method also eliminates the need for specialized equipment. This innovation was achieved by simultaneously carving out the ZIF-8 crystal, a process known as ‘etching’ while gold nanoparticles grow in place of these etched ZIF-8 yielding SS with a strong absorption and scattering of light in the invisible near infra-red window of electromagnetic spectrum, which is ideal for highly effective photothermal therapy. Surface passivation with PEG enhances cryo-preservability, aqueous stability, and blood compatibility of these SS, ensuring an extended shelf life and safe intravenous administration. The PEGylated SS synthesised, was nontoxic, had high photothermal conversion efficiency and was found to have high therapeutic efficacy. They have shown that the SS is capable of destroying metastatic breast tumours through a medical procedure called photothermal ablation. The procedure significantly improved survival rate and minimised tumour relapse in preclinical mice model indicating their potential to significantly improve outcomes in advanced breast tumours. Compared to existing technologies, this method ensures superior stability, ease of administration, and enhanced photothermal performance. Future studies aim to explore chemo-photothermal therapy for highly selective oncological applications and investigate the potential of these semi shells in Surface-Enhanced Raman Spectroscopy (SERS) biosensing, leveraging their unique optical properties for advanced biomedical applications. *** NKR/PSM (Release ID: 2136980)

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