百家乐怎么玩-澳门百家乐官网娱乐城网址_网上百家乐是不是真的_全讯网888 (中国)·官方网站

Submitted by cheukllui3 on
Anti-Cancer
Chemical Biology
CityU researchers develop novel photo-oxidation therapy for anticancer treatment

A research team led by scientists from City University of Hong Kong (CityU) has achieved a significant breakthrough by inventing a new class of near-infrared-activated photo-oxidants that can effectively kill cancer cells without requiring oxygen. The photo-oxidants induce a unique form of cancer cell death that can overcome cancer cell resistance. The findings offer a new strategy, called ‘photo-oxidation therapy’, and provide a promising direction for the development of anti-cancer drugs.

Photodynamic therapy, an innovative cancer treatment approach, utilizes photosensitizers to generate reactive oxygen species (ROSs), which when irradiated by light, selectively kill cancer cells. However, most existing photodynamic therapies rely on the presence of oxygen, while solid cancer tumours often feature a hypoxic microenvironment with very low oxygen levels, limiting the therapeutic efficiency of this approach.

To address this limitation, a research team led by Professor Guangyu Zhu, in the Department of Chemistry, and Professor Mingliang He, in the Department of Biomedical Sciences (BMS) at CityU, discovered an effect called “metal-enhanced photo-oxidation”. By conjugating metals like platinum with organic photosensitive ligands, they significantly enhanced the photo-oxidation capability. This breakthrough led them to develop a new class of near-infrared-activated platinum(IV) photo-oxidants (Pt(IV) photo-oxidants) that can be activated by near-infrared (NIR) light to directly oxidize biomolecules and effectively kill cancer cells without the need for oxygen.

photo-oxidation therapy
The CityU team developed a new class of near-infrared-activated platinum(IV) photo-oxidants that can effectively eliminate cancer cells in an oxygen-independent manner. The photo-oxidants trigger nonclassical necrosis, which can overcome the resistance of cancer cells to conventional photodynamic therapies and chemotherapies, and activate the immune system. The research highlights the importance of the photo-oxidation capability of metal-based anticancer agents and provides a new direction for the development of next-generation anti-cancer drugs.
(Photo source: Deng, Z. et al., source: https://www.nature.com/articles/s41557-023-01242-w)

In their experiments, the team administered Pt(IV) photo-oxidants to mice with tumours through intravenous injection. Four hours later, they applied near-infrared radiation to the mice to activate the photo-oxidants to attack the cancer cells. The results demonstrated a significant reduction in tumour volume and weight  of 89% and 76%, respectively, indicating the potent tumour-inhibitory effect of the Pt(IV) photo-oxidants.

“Intriguingly, we found that the ‘death mode’ of cancer cells induced by the Pt(IV) photo-oxidants differs from that of any other anticancer agents,” said Professor Zhu. “A unique mode of cancer cell destruction was initiated through the dual-action effect of strong intracellular oxidative stress and reduced intracellular pH value.”  

Their experimental data show that after the Pt(IV) photo-oxidants that accumulated in the endoplasmic reticulum inside the cancer cells were activated by near-infrared radiation, they vigorously oxidized crucial biomolecules inside the cancer cells without requiring oxygen, generating ROSs, lipid peroxides and protons. The ROSs and lipid peroxides then triggered intensive oxidative bursts, while the protons lowered the intracellular pH value, creating an unfavourable acidic microenvironment for the cancer cells.

photo-oxidation therapy
A CityU research team achieved a significant breakthrough by inventing a new class of near-infrared-activated photo-oxidants. (Credit: City University of Hong Kong)

Moreover, their experiments confirmed that Pt(IV) photo-oxidants effectively activate the immune system in both in vitro and in vivo settings. The Pt(IV) photo-oxidants triggered immunogenic cell death, stimulating the proliferation and activation of immune cells. The number of T helper and T killer cells, which are crucial for triggering the body’s immune response, in the mice treated with photoactivated Pt(IV) photo-oxidants increased by 7- and 23-fold, respectively, compared to the control group.

“By inducing nonclassical necrosis, Pt(IV) photo-oxidants can overcome the resistance of cancer cells to traditional photodynamic therapies and chemotherapy agents, activate the immune system, and effectively eliminate cancer cells,” explained Professor Zhu.

“These findings serve as proof of concept and suggest that the development of photo-oxidants based on metal-enhanced photo-oxidation is a promising new direction for developing metal-based anticancer drugs,” said Professor He.

The research team plans to conduct preclinical studies to fully characterize the chemical, biological and pharmaceutical properties of the newly invented Pt(IV) photo-oxidants. Their ultimate goal is to identify lead compounds for clinical testing.

The paper, titled “Near-infrared-activated anticancer platinum(IV) complexes directly photo-oxidize biomolecules in an oxygen-independent manner”, was published in the scientific journal Nature Chemistry.

The co-first authors of the study are Dr Zhiqin Deng and Dr Huangcan Li, both from CityU. The corresponding authors are Professor Zhu and Professor He. Collaborators from CityU include Professor Michael Mengsu YangProfessor Jian LuProfessor Yangyang LiProfessor Pui-chi LoProfessor Dangyuan LeiDr Weihui OuDr Na WangDr Shu Chen and PhD students Mr Gongyuan LiuMr Feijie Xu and Mr Xiong Wang.

photo-oxidation therapy
The research team, led by Professor Guangyu Zhu (front, right), in the Department of Chemistry, and Professor Mingliang He (front, left), in the Department of Biomedical Sciences at CityU, and back row from left: Dr Huangcan Li, the co-first author, and Mr Xiong Wang, Mr Gongyuan Liu and Dr Shu Chen. (Credit: City University of Hong Kong)

The study received support from various funding sources, including the Hong Kong Research Grants Council, the National Natural Science Foundation of China, and the Science Technology and Innovation Committee of Shenzhen Municipality.

 

This research article originated from CityU Research Stories.

破解百家乐官网公式| 大发888娱乐游戏可以玩吗| 利来百家乐官网娱乐| 优博在线娱乐| 百家乐官网三遍| 免费百家乐缩水| 澳门百家乐官网打法百家乐官网破解方法| 真人百家乐视频赌博| 大发888英皇国际| 百家乐官网怎样算大小| 钱柜百家乐的玩法技巧和规则 | 百家乐官网真钱路怎么看| 微信百家乐群规则大全| 百家乐官网赌博论坛| 百家乐机械投注法| 足球投注| 长江百家乐官网的玩法技巧和规则 | 金银岛娱乐城开户| 香港百家乐官网娱乐场开户注册| 杨筠松 24山 图| 太阳城假日酒店| 百家乐官网游戏什么时间容易出对| 山丹县| 属蛇做生意坐向| 永顺县| 百家乐游戏规测| 百家乐官网视频中国象棋| 大发888赌场 游戏平台| 投真钱百家乐官网必输吗| 全讯网网站xb112| 百家乐怎么才赢| 广东百家乐官网网| 大发888娱乐场18| 网上百家乐真坑人| 玩百家乐官网凤凰娱乐城| 德州扑克概率表| 神人百家乐赌场| 七胜百家乐官网娱乐城总统网上娱乐城大都会娱乐城赌场 | 百家乐官网龙虎台布多少钱| 噢门百家乐注码技巧| 太阳会百家乐官网现金网|