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Detection of mouse liver cancer via a parallel iterative shrinkage method in hybrid optical/microcomputed tomography imaging

  • Ping Wu
  • , Kai Liu
  • , Qian Zhang
  • , Zhenwen Xue
  • , Yongbao Li
  • , Nannan Ning
  • , Xin Yang
  • , Xingde Li
  • , Jie Tian*
  • *此作品的通讯作者
  • CAS - Institute of Automation
  • IBM
  • School of Life Science and Technology, Xidian University
  • Harbin University of Science and Technology
  • Johns Hopkins University

科研成果: 期刊稿件文章同行评审

摘要

Liver cancer is one of the most common malignant tumors worldwide. In order to enable the noninvasive detection of small liver tumors in mice, we present a parallel iterative shrinkage (PIS) algorithm for dual-modality tomography. It takes advantage of microcomputed tomography and multiview bioluminescence imaging, providing anatomical structure and bioluminescence intensity information to reconstruct the size and location of tumors. By incorporating prior knowledge of signal sparsity, we associate some mathematical strategies including specific smooth convex approximation, an iterative shrinkage operator, and affine subspace with the PIS method, which guarantees the accuracy, efficiency, and reliability for three-dimensional reconstruction. Then an in vivo experiment on the bead-implanted mouse has been performed to validate the feasibility of this method. The findings indicate that a tiny lesion less than 3 mm in diameter can be localized with a position bias no more than 1 mm; the computational efficiency is one to three orders of magnitude faster than the existing algorithms; this approach is robust to the different regularization parameters and the lp norms. Finally, we have applied this algorithm to another in vivo experiment on an HCCLM3 orthotopic xenograft mouse model, which suggests the PIS method holds the promise for practical applications of whole-body cancer detection.

源语言英语
文章编号126012
期刊Journal of Biomedical Optics
17
12
DOI
出版状态已出版 - 12月 2012
已对外发布

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