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Multifunctional gold nanostars for c...
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Liu, Yang.
Multifunctional gold nanostars for cancer theranostics
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Multifunctional gold nanostars for cancer theranosticsby Yang Liu.
作者:
Liu, Yang.
出版者:
Cham :Springer International Publishing :2018.
面頁冊數:
xx, 71 p. :ill., digital ;24 cm.
Contained By:
Springer eBooks
標題:
Nanomedicine.
電子資源:
http://dx.doi.org/10.1007/978-3-319-74920-4
ISBN:
9783319749204$q(electronic bk.)
Multifunctional gold nanostars for cancer theranostics
Liu, Yang.
Multifunctional gold nanostars for cancer theranostics
[electronic resource] /by Yang Liu. - Cham :Springer International Publishing :2018. - xx, 71 p. :ill., digital ;24 cm. - Springer theses,2190-5053. - Springer theses..
Introduction -- Multifunctional GNS nanoprobe development and characterization -- In vivo evaluation of GNS nanoprobe -- GNS toxicity investigation -- Sensitive brain tumor detection using GNS nanoprobe -- Photoimmunotherapy for cancer metastasis treatment -- Conclusion and future outlook.
This thesis presents the development of theranostic gold nanostars (GNS) for multimodality cancer imaging and therapy. Furthermore, it demonstrates that a novel two-pronged treatment, combining immune-checkpoint inhibition and GNS-mediated photothermal nanotherapy, can not only eradicate primary treated tumors but also trigger immune responses to treat distant untreated tumors in a mouse animal model. Cancer has become a significant threat to human health with more than eight million deaths each year, and novel methods for cancer management to improve patients' overall survival are urgently needed. The developed multifunctional GNS nanoprobe with tip-enhanced plasmonics in the near-infrared region can be combined with (1) surface-enhanced Raman spectroscopy (SERS), (2) two-photon photoluminescence (TPL), (3) X-ray computed tomography (CT), (4) magnetic resonance imaging (MRI), (5) positron emission tomography (PET), and (6) photothermal therapy (PTT) for cancer imaging and treatment. The ability of the GNS nanoprobe to detect submillimeter intracranial brain tumors was demonstrated using PET scan - a superior non-invasive imaging modality - in a mouse animal model. In addition, delayed rechallenge with repeated cancer cell injection in cured mice did not lead to new tumor formation, indicating generation of a memorized immune response to cancer. The biocompatible gold nanostars with superior capabilities for cancer imaging and treatment have great potential for translational medicine applications.
ISBN: 9783319749204$q(electronic bk.)
Standard No.: 10.1007/978-3-319-74920-4doiSubjects--Topical Terms:
273406
Nanomedicine.
LC Class. No.: R857.N34 / L589 2018
Dewey Class. No.: 610.28
Multifunctional gold nanostars for cancer theranostics
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Introduction -- Multifunctional GNS nanoprobe development and characterization -- In vivo evaluation of GNS nanoprobe -- GNS toxicity investigation -- Sensitive brain tumor detection using GNS nanoprobe -- Photoimmunotherapy for cancer metastasis treatment -- Conclusion and future outlook.
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This thesis presents the development of theranostic gold nanostars (GNS) for multimodality cancer imaging and therapy. Furthermore, it demonstrates that a novel two-pronged treatment, combining immune-checkpoint inhibition and GNS-mediated photothermal nanotherapy, can not only eradicate primary treated tumors but also trigger immune responses to treat distant untreated tumors in a mouse animal model. Cancer has become a significant threat to human health with more than eight million deaths each year, and novel methods for cancer management to improve patients' overall survival are urgently needed. The developed multifunctional GNS nanoprobe with tip-enhanced plasmonics in the near-infrared region can be combined with (1) surface-enhanced Raman spectroscopy (SERS), (2) two-photon photoluminescence (TPL), (3) X-ray computed tomography (CT), (4) magnetic resonance imaging (MRI), (5) positron emission tomography (PET), and (6) photothermal therapy (PTT) for cancer imaging and treatment. The ability of the GNS nanoprobe to detect submillimeter intracranial brain tumors was demonstrated using PET scan - a superior non-invasive imaging modality - in a mouse animal model. In addition, delayed rechallenge with repeated cancer cell injection in cured mice did not lead to new tumor formation, indicating generation of a memorized immune response to cancer. The biocompatible gold nanostars with superior capabilities for cancer imaging and treatment have great potential for translational medicine applications.
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