Department of Pharmacy, Dali University, Dali, Yunnan 671000, PR China.
Department of Pharmacy, Harbin Medical University, Harbin, Heilongjiang 150081, PR China.
Biomed Pharmacother. 2023 Sep;165:115070. doi: 10.1016/j.biopha.2023.115070. Epub 2023 Jun 28.
At present, cancer remains one of the leading causes of human death worldwide, and surgery, radiotherapy and chemotherapy are still the main methods of cancer treatment. However, these treatments have their drawbacks. Surgical treatment often struggles with the complete removal of tumor tissue, leading to a high risk of cancer recurrence. Additionally, chemotherapy drugs have a significant impact on overall health and can easily result in drug resistance. The high risk and mortality of cancer and other reasons promote scientific researchers to unremittingly develop and find a more accurate and faster diagnosis strategy and effective cancer treatment method. Photothermal therapy, which utilizes near-infrared light, offers deeper tissue penetration and minimal damage to surrounding healthy tissues. Compared to conventional radiotherapy and other treatment methods, photothermal therapy boasts several advantages, including high efficiency, non-invasiveness, simplicity, minimal toxicity, and fewer side effects. Photothermal nanomaterials can be categorized as either organic or inorganic materials. This review primarily focuses on the behavior of carbon materials as inorganic materials and their role in tumor photothermal treatment. Furthermore, the challenges faced by carbon materials in photothermal treatment are discussed.
目前,癌症仍然是全球人类死亡的主要原因之一,手术、放疗和化疗仍然是癌症治疗的主要方法。然而,这些治疗方法都有其自身的缺陷。手术治疗常常难以彻底清除肿瘤组织,从而导致癌症复发的风险很高。此外,化疗药物对整体健康有重大影响,并且容易产生耐药性。癌症的高风险和高死亡率等原因促使科学研究人员不懈地开发和寻找更准确、更快的诊断策略和有效的癌症治疗方法。光热疗法利用近红外光,具有更深的组织穿透性和对周围健康组织的最小损伤。与传统的放疗和其他治疗方法相比,光热疗法具有高效、无创、简单、低毒性和较少副作用等优点。光热纳米材料可分为有机或无机材料。本文主要介绍了作为无机材料的碳材料的行为及其在肿瘤光热治疗中的作用。此外,还讨论了碳材料在光热治疗中面临的挑战。
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