Literature DB >> 29350596

Enhancement of antitumor activity by using 5-ALA-mediated sonodynamic therapy to induce apoptosis in malignant gliomas: significance of high-intensity focused ultrasound on 5-ALA-SDT in a mouse glioma model.

Satoshi Suehiro1, Takanori Ohnishi2, Daisuke Yamashita1, Shohei Kohno1, Akihiro Inoue1, Masahiro Nishikawa1, Shiro Ohue3, Junya Tanaka4, Takeharu Kunieda1.   

Abstract

OBJECTIVEHigh invasiveness of malignant gliomas frequently causes early local recurrence of the tumor, resulting in extremely poor outcome. To control such recurrence, novel therapies targeted toward infiltrating glioma cells around the tumor border are required. Here, the authors investigated the antitumor activity of sonodynamic therapy (SDT) combined with a sonosensitizer, 5-aminolevulinic acid (5-ALA), on malignant gliomas to explore the possibility for clinical use of 5-ALA-mediated SDT (5-ALA-SDT).METHODSIn vitro cytotoxicity of 5-ALA-SDT was evaluated in U87 and U251 glioma cells and in U251Oct-3/4 glioma stemlike cells. Treatment-related apoptosis was analyzed using flow cytometry and TUNEL staining. Intracellular reactive oxygen species (ROS) were measured and the role of ROS in treatment-related cytotoxicity was examined by analysis of the effect of pretreatment with the radical scavenger edaravone. Effects of 5-ALA-SDT with high-intensity focused ultrasound (HIFU) on tumor growth, survival of glioma-transplanted mice, and histological features of the mouse brains were investigated.RESULTSThe 5-ALA-SDT inhibited cell growth and changed cell morphology, inducing cell shrinkage, vacuolization, and swelling. Flow cytometric analysis and TUNEL staining indicated that 5-ALA-SDT induced apoptotic cell death in all gliomas. The 5-ALA-SDT generated significantly higher ROS than in the control group, and inhibition of ROS generation by edaravone completely eliminated the cytotoxic effects of 5-ALA-SDT. In the in vivo study, 5-ALA-SDT with HIFU greatly prolonged survival of the tumor-bearing mice compared with that of the control group (p < 0.05). Histologically, 5-ALA-SDT produced mainly necrosis of the tumor tissue in the focus area and induced apoptosis of the tumor cells in the perifocus area around the target of the HIFU-irradiated field. The proliferative activity of the entire tumor was markedly decreased. Normal brain tissues around the ultrasonic irradiation field of HIFU remained intact.CONCLUSIONSThe 5-ALA-SDT was cytotoxic toward malignant gliomas. Generation of ROS by the SDT was thought to promote apoptosis of glioma cells. The 5-ALA-SDT with HIFU induced tumor necrosis in the focus area and apoptosis in the perifocus area of the HIFU-irradiated field, whereas the surrounding brain tissue remained normal, resulting in longer survival of the HIFU-treated mice compared with that of untreated mice. These results suggest that 5-ALA-SDT with HIFU may present a less invasive and tumor-specific therapy, not only for a tumor mass but also for infiltrating tumor cells in malignant gliomas.

Entities:  

Keywords:  5-ALA = 5-aminolevulinic acid; 5-ALA-SDT = 5-ALA–mediated SDT; 5-aminolevulinic acid; DCFH-DA = dichlorodihydrofluorescein diacetate; DPBS = Dulbecco phosphate-buffered saline; FBS = fetal bovine serum; FUS = focused ultrasound; GSL = glioma stemlike; HIFU = high-intensity focused ultrasound; IP = intraperitoneal; NSC = neural stem cell; PDT = photodynamic therapy; PFA = paraformaldehyde; PpIX = protoporphyrin IX; ROS = reactive oxygen species; SDT = sonodynamic therapy; TBS = Tris-buffered saline; US = ultrasound; apoptosis; high-intensity focused ultrasound; malignant gliomas; oncology; sonodynamic therapy

Mesh:

Substances:

Year:  2018        PMID: 29350596     DOI: 10.3171/2017.6.JNS162398

Source DB:  PubMed          Journal:  J Neurosurg        ISSN: 0022-3085            Impact factor:   5.115


  15 in total

Review 1.  Applications of Focused Ultrasound in Cerebrovascular Diseases and Brain Tumors.

Authors:  Francesco Prada; M Yashar S Kalani; Kaan Yagmurlu; Pedro Norat; Massimiliano Del Bene; Francesco DiMeco; Neal F Kassell
Journal:  Neurotherapeutics       Date:  2019-01       Impact factor: 7.620

Review 2.  Hyperthermia treatment advances for brain tumors.

Authors:  Georgios P Skandalakis; Daniel R Rivera; Caroline D Rizea; Alexandros Bouras; Joe Gerald Jesu Raj; Dominique Bozec; Constantinos G Hadjipanayis
Journal:  Int J Hyperthermia       Date:  2020-07       Impact factor: 3.914

3.  Fluorescein-mediated sonodynamic therapy in a rat glioma model.

Authors:  Francesco Prada; Natasha Sheybani; Andrea Franzini; David Moore; Diogo Cordeiro; Jason Sheehan; Kelsie Timbie; Zhiyuan Xu
Journal:  J Neurooncol       Date:  2020-06-04       Impact factor: 4.506

Review 4.  Acridine Orange: A Review of Novel Applications for Surgical Cancer Imaging and Therapy.

Authors:  Vadim A Byvaltsev; Liudmila A Bardonova; Naomi R Onaka; Roman A Polkin; Sergey V Ochkal; Valerij V Shepelev; Marat A Aliyev; Alexander A Potapov
Journal:  Front Oncol       Date:  2019-09-24       Impact factor: 6.244

5.  Cell penetrating peptide-modified nanoparticles for tumor targeted imaging and synergistic effect of sonodynamic/HIFU therapy.

Authors:  Yizhen Li; Lan Hao; Fengqiu Liu; Lixue Yin; Sijing Yan; Hongyun Zhao; Xiaoya Ding; Yuan Guo; Yang Cao; Pan Li; Zhigang Wang; Haitao Ran; Yang Sun
Journal:  Int J Nanomedicine       Date:  2019-07-29

Review 6.  Sonodynamic Therapy for Gliomas. Perspectives and Prospects of Selective Sonosensitization of Glioma Cells.

Authors:  Krzysztof Bilmin; Tamara Kujawska; Paweł Grieb
Journal:  Cells       Date:  2019-11-13       Impact factor: 6.600

Review 7.  Sonodynamic therapy for gliomas.

Authors:  Adomas Bunevicius; Stylianos Pikis; Frederic Padilla; Francesco Prada; Jason Sheehan
Journal:  J Neurooncol       Date:  2021-07-12       Impact factor: 4.130

8.  Single-cell RNA sequencing reveals the mechanism of sonodynamic therapy combined with a RAS inhibitor in the setting of hepatocellular carcinoma.

Authors:  Bolin Wu; Yanchi Yuan; Jiayin Liu; Haitao Shang; Jing Dong; Xitian Liang; Dongxu Wang; Yichi Chen; Chunyue Wang; Yang Zhou; Hui Jing; Wen Cheng
Journal:  J Nanobiotechnology       Date:  2021-06-12       Impact factor: 10.435

9.  Antitumor Effects of 5-Aminolevulinic Acid on Human Malignant Glioblastoma Cells.

Authors:  Mohammad Jalili-Nik; Farzaneh Abbasinezhad-Moud; Sajad Sahab-Negah; Abolfazl Maghrouni; Mohammad Etezad Razavi; Maryam Khaleghi Ghadiri; Walter Stummer; Ali Gorji
Journal:  Int J Mol Sci       Date:  2021-05-25       Impact factor: 5.923

10.  Intracranial Sonodynamic Therapy With 5-Aminolevulinic Acid and Sodium Fluorescein: Safety Study in a Porcine Model.

Authors:  Luca Raspagliesi; Antonio D'Ammando; Matteo Gionso; Natasha D Sheybani; Maria-Beatriz Lopes; David Moore; Steven Allen; Jeremy Gatesman; Edoardo Porto; Kelsie Timbie; Andrea Franzini; Francesco Di Meco; Jason Sheehan; Zhiyuan Xu; Francesco Prada
Journal:  Front Oncol       Date:  2021-06-21       Impact factor: 6.244

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