Yoshiko Amasaki
Overview
Explore the profile of Yoshiko Amasaki including associated specialties, affiliations and a list of published articles.
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Articles
17
Citations
85
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Recent Articles
1.
Tsuruoka C, Shinagawa M, Shang Y, Amasaki Y, Sunaoshi M, Imaoka T, et al.
Radiat Res
. 2024 Jul;
202(3):503-509.
PMID: 39048112
Carbon ion radiotherapy (CIRT) for pediatric cancer is currently limited because of the unknown risk of induction of secondary cancers. Medulloblastoma of Ptch1+/- mice offers a unique experimental system for...
2.
Yanagihara H, Morioka T, Yamazaki S, Yamada Y, Tachibana H, Daino K, et al.
J Radiat Res
. 2023 Apr;
64(3):622-631.
PMID: 37117033
Recent studies have identified interstitial deletions in the cancer genome as a radiation-related mutational signature, although most of them do not fall on cancer driver genes. Pioneering studies in the...
3.
Nakayama T, Sunaoshi M, Shang Y, Takahashi M, Saito T, Blyth B, et al.
PLoS One
. 2023 Jan;
18(1):e0280560.
PMID: 36662808
Calorie restriction (CR) suppresses not only spontaneous but also chemical- and radiation-induced carcinogenesis. Our previous study revealed that the cancer-preventive effect of CR is tissue dependent and that CR does...
4.
Tsuruoka C, Kaminishi M, Shinagawa M, Shang Y, Amasaki Y, Shimada Y, et al.
Radiat Res
. 2021 May;
196(2):225-234.
PMID: 34046685
Neutron radiation, a high-linear energy transfer radiation, has a high relative biological effectiveness (RBE) for various end points. The age at exposure is an important modifier of the effects of...
5.
Inoue T, Kokubo T, Daino K, Yanagihara H, Watanabe F, Tsuruoka C, et al.
Cancer Sci
. 2020 Jan;
111(3):840-848.
PMID: 31925975
Ionizing radiation can damage DNA and, therefore, is a risk factor for cancer. Eker rats, which carry a heterozygous germline mutation in the tumor-suppressor gene tuberous sclerosis complex 2 (Tsc2),...
6.
Daino K, Ishikawa A, Suga T, Amasaki Y, Kodama Y, Shang Y, et al.
Carcinogenesis
. 2019 Feb;
40(2):216-224.
PMID: 30721949
Biallelic germline mutations in the DNA mismatch repair gene MLH1 lead to constitutional mismatch repair-deficiency syndrome and an increased risk for childhood hematopoietic malignancies, including lymphoma and leukemia. To examine...
7.
Sunaoshi M, Amasaki Y, Hirano-Sakairi S, Blyth B, Morioka T, Kaminishi M, et al.
Mutat Res
. 2015 Jul;
779:58-67.
PMID: 26141385
Children are considered more sensitive to radiation-induced cancer than adults, yet any differences in genomic alterations associated with age-at-exposure and their underlying mechanisms remain unclear. We assessed genome-wide DNA copy...
8.
Blyth B, Kakinuma S, Sunaoshi M, Amasaki Y, Hirano-Sakairi S, Ogawa K, et al.
PLoS One
. 2015 Jul;
10(6):e0130666.
PMID: 26125582
Monitoring mice exposed to carbon ion radiotherapy provides an indirect method to evaluate the potential for second cancer induction in normal tissues outside the radiotherapy target volume, since such estimates...
9.
Kakinuma S, Nishimura M, Amasaki Y, Takada M, Yamauchi K, Sudo S, et al.
Mutat Res
. 2012 Jun;
737(1-2):43-50.
PMID: 22706209
Ionizing radiation is a well-known carcinogen, but its potency may be influenced by other environmental carcinogens, which is of practical importance in the assessment of risk. Data are scarce, however,...
10.
Hirano S, Kakinuma S, Amasaki Y, Nishimura M, Imaoka T, Fujimoto S, et al.
Int J Cancer
. 2012 Jun;
132(2):259-68.
PMID: 22684892
Cancer risk associated with radiation exposure is considered the result of concurrent exposure to other natural and manmade carcinogens. Available data on the molecular characteristics of cancer after simultaneous exposure...