Journal of Surgery Concepts & Practice ›› 2021, Vol. 26 ›› Issue (04): 318-324.doi: 10.16139/j.1007-9610.2021.04.009
• Experts forum • Previous Articles Next Articles
SUN Yingshi(), LU Qiaoyuan, GUAN Zhen, Zhang Xiaoyan
Received:
2021-06-25
Online:
2021-07-25
Published:
2021-08-31
Contact:
SUN Yingshi
E-mail:sys27@163.com
CLC Number:
SUN Yingshi, LU Qiaoyuan, GUAN Zhen, Zhang Xiaoyan. Imaging in diagnosis of colorectal tumor and evaluation[J]. Journal of Surgery Concepts & Practice, 2021, 26(04): 318-324.
[1] |
Siegel RL, Miller KD, Jemal A. Cancer statistics, 2020[J]. CA Cancer J Clin, 2020, 70(1):7-30.
doi: 10.3322/caac.21590 URL |
[2] |
Argilés G, Tabernero J, Labianca R, et al. Localised colon cancer: ESMO Clinical Practice Guidelines for dia-gnosis, treatment and follow-up[J]. Ann Oncol, 2020, 31(10):1291-1305.
doi: S0923-7534(20)39932-4 pmid: 32702383 |
[3] | 国家卫生健康委. 中国结直肠癌诊疗规范(2020年版)[J]. 中国实用外科杂志, 2020, 40(6):600-630. |
[4] | Amin MB, Greene FL, Edge S, et al. AJCC Cancer Sta-ging Mannual[M]. 8th ed. New York: Springer, 2017:252-274. |
[5] |
Fernandez LM, Parlade AJ, Wasser EJ, et al. How re-liable is CT scan in staging right colon cancer?[J]. Dis Colon Rectum, 2019, 62(8):960-964.
doi: 10.1097/DCR.0000000000001387 pmid: 30870227 |
[6] | D′Souza N, Shaw A, Lord A, et al. Assessment of a sta-ging system for sigmoid colon cancer based on tumor deposits and extramural venous invasion on computed tomography[J]. JAMA Netw Open, 2019, 2(12):e1916987. |
[7] | Korsbakke K, Dahlbäck C, Karlsson N, et al. Tumor and nodal staging of colon cancer: accuracy of preoperative computed tomography at a Swedish high-volume center[J]. Acta Radiol Open, 2019, 8(12):2058460119888713. |
[8] | Rollvén E, Blomqvist L, Öistämö E, et al. Morphological predictors for lymph node metastases on computed tomography in colon cancer[J]. Abdom Radiol(NY), 2019, 44(5):1712-1721. |
[9] |
Rollvén E, Abraham-Nordling M, Holm T, et al. Assessment and diagnostic accuracy of lymph node status to predict stage Ⅲ colon cancer using computed tomography[J]. Cancer Imaging, 2017, 17(1):3.
doi: 10.1186/s40644-016-0104-2 pmid: 28103922 |
[10] |
Song W, Chen Z, Zheng Z, et al. Prognostic value of radiologically enlarged lymph nodes in node-negative colon cancer[J]. Colorectal Dis, 2020, 22(5):537-543.
doi: 10.1111/codi.14938 pmid: 31868954 |
[11] |
Cheng J, Wu J, Ye YJ, et al. Extramural venous invasion detected by MDCT as an adverse imaging feature for predicting synchronous metastases in T4 gastric cancer[J]. Acta Radiol, 2017, 58(4):387-393.
doi: 10.1177/0284185116658323 pmid: 27439402 |
[12] |
Cheng J, Wu J, Ye YJ, et al. The prognostic significance of extramural venous invasion detected by multiple-row detector computed tomography in stage Ⅲ gastric cancer[J]. Abdom Radiol (NY), 2016, 41(7):1219-1226.
doi: 10.1007/s00261-015-0627-1 pmid: 27315092 |
[13] |
Zhang XY, Wang S, Li XT, et al. MRI of extramural venous invasion in locally advanced rectal cancer: relationship to tumor recurrence and overall survival[J]. Radiology, 2018, 289(3):677-685.
doi: 10.1148/radiol.2018172889 URL |
[14] |
Yao X, Yang SX, Song XH, et al. Prognostic significance of computed tomography-detected extramural vascular invasion in colon cancer[J]. World J Gastroenterol, 2016, 22(31):7157-7165.
doi: 10.3748/wjg.v22.i31.7157 URL |
[15] |
Yang SX, Yao X, Song XH, et al. Extramural vascular invasion detected by contrast-enhanced multiple-row detectors computed tomography (ceMDCT) as a predictor of synchronous metastases in colon cancer[J]. Oncotarget, 2017, 8(55):94883-94892.
doi: 10.18632/oncotarget.22034 URL |
[16] |
Komono A, Shida D, Iinuma G, et al. Preoperative T staging of colon cancer using CT colonography with multiplanar reconstruction: new diagnostic criteria based on “bordering vessels”[J]. Int J Colorectal Dis, 2019, 34(4):641-648.
doi: 10.1007/s00384-019-03236-y pmid: 30666406 |
[17] |
Horvat N, Raj A, Liu S, et al. CT colonography in preo-perative staging of colon cancer: evaluation of FOxTROT inclusion criteria for neoadjuvant therapy[J]. Am J Roentgenol, 2019, 212(1):94-102.
doi: 10.2214/AJR.18.19928 URL |
[18] | Park SY, Cho SH, Lee MA, et al. Diagnostic performance of MRI-versus MDCT-categorized T3cd/T4 for identifying high-risk stage Ⅱ or stage Ⅲ colon cancers: a pilot study[J]. Abdom Radiol (NY), 2019, 44(5):1675-1685. |
[19] |
Liu LH, Lv H, Wang ZC, et al. Performance comparison between MRI and CT for local staging of sigmoid and descending colon cancer[J]. Eur J Radiol, 2019, 121:108741.
doi: 10.1016/j.ejrad.2019.108741 URL |
[20] | 张晓鹏. 结肠肿瘤影像学诊断[J]. 中国医学计算机成像杂志, 2001, 7(2):103-110. |
[21] |
Benson AB, Venook AP, Al-Hawary MM, et al. Rectal Cancer, Version 2.2018, NCCN Clinical Practice Guidelines in Oncology[J]. J Natl Compr Canc Netw, 2018, 16(7):874-901.
doi: 10.6004/jnccn.2018.0061 URL |
[22] |
Nougaret S, Reinhold C, Mikhael HW, et al. The use of MR imaging in treatment planning for patients with rectal carcinoma: have you checked the “DISTANCE”?[J]. Radiology, 2013, 268(2):330-344.
doi: 10.1148/radiol.13121361 URL |
[23] | 唐圣军, 吕亚萍, 兰庆茂, 等. MSCT(多层螺旋 CT)与 MRI 在结直肠癌术前分期及预后评诂的价值对比分析[J]. 结直肠肛门外科, 2017, 23(S1):16-17. |
[24] | Sethi R, Lee SH. Imaging in colorectal cancer[M]//Brown SR, Hartley JE, Hill J, et al. Contemporary Coloproctology. London: Springer, 2012:123-138. |
[25] | 孙应实, 李晓婷, 张晓燕, 等. 直肠癌高分辨率磁共振成像T分期与病理T分期的对照研究[J]. 中华外科杂志, 2012, 50(3):207-210. |
[26] |
Wan LJ, Liu Y, Peng WJ, et al. Submucosal enhancing stripe as a contrast material-enhanced MRI-based ima-ging feature for the differentiation of stage T0-T1 from early T2 rectal cancers[J]. Radiology, 2021, 298(1):93-101.
doi: 10.1148/radiol.2020201416 pmid: 33170102 |
[27] |
Fornell-Perez R, Perez-Alonso E, Porcel-de-Peralta G, et al. Primary and post-chemoradiotherapy staging using MRI in rectal cancer: the role of diffusion imaging in the assessment of perirectal infiltration[J]. Abdom Radiol (NY), 2019, 44(11):3674-3682.
doi: 10.1007/s00261-019-02139-4 pmid: 31332499 |
[28] |
Memon S, Lynch AC, Bressel M, et al. Systematic review and meta-analysis of the accuracy of MRI and endorectal ultrasound in the restaging and response assessment of rectal cancer following neoadjuvant therapy[J]. Colorectal Dis, 2015, 17(9):748-761.
doi: 10.1111/codi.12976 pmid: 25891148 |
[29] |
Nicholls RJ, Hall C. Treatment of non-disseminated cancer of the lower rectum[J]. Br J Surg, 1996, 83(1):15-18.
doi: 10.1002/bjs.1800830105 URL |
[30] | Hermanek P, Henson DE, Hutter RV, et al. UICC TNM supplement 1993: a commentary on uniform use[M]. Berlin, Germany: Springer-Verlag,1993. |
[31] |
Kaur H, Choi H, You YN, et al. MR imaging for pre-operative evaluation of primary rectal cancer: practical considerations[J]. Radiographics, 2012, 32(2):389-409.
doi: 10.1148/rg.322115122 URL |
[32] | RSNA Informatics Reporting website. MR rectum cancer(2014-02-11)[2021-06-25]. www.radreport.org/txt/0000068. |
[33] |
Cho SH, Kim SH, Bae JH, et al. Prognostic stratification by extramural depth of tumor invasion of primary rectal cancer based on the Radiological Society of North Ame-rica Proposal[J]. Am J Roentgenol, 2014, 202(6):1238-1244.
doi: 10.2214/AJR.13.11311 URL |
[34] |
Rifkin MD, Ehrlich SM, Marks G. Staging of rectal carcinoma: prospective comparison of endorectal US and CT[J]. Radiology, 1989, 170(2):319-322.
pmid: 2643135 |
[35] |
Hünerbein M. Endorectal ultrasound in rectal cancer[J]. Colorectal Dis, 2003, 5(5):402-405.
pmid: 12925070 |
[36] |
Ashraf S, Hompes R, Slater A. A critical appraisal of endorectal ultrasound and transanal endoscopic microsurgery and decision-making in early rectal cancer[J]. Colorectal Dis, 2012, 14(7):821-826.
doi: 10.1111/j.1463-1318.2011.02830.x pmid: 21920011 |
[37] |
Thompson WM, Halvorsen RA, Foster WL, et al. Pre-operative and postoperative staging of rectosigmoid carcino-ma[J]. Am J Roentgenol, 1986, 146(4):703-710.
pmid: 3485343 |
[38] |
Shank B, Dershaw DD, Caravelli J, et al. A prospective study of preoperative computed tomography staging of patients with biopsy proven rectal carcinoma[J]. Dis Colon Rectum, 1990, 33(4):285-290.
pmid: 2323277 |
[39] | Tveit KM, Kataja VV. ESMO Guidelines Task Force. ESMO Minimum Clinical Recommendations for diagnosis, treatment and follow-up of rectal cancer[J]. Ann Oncol, 2005, 16 Suppl 1:i20-i21. |
[40] |
Brown G, Richards CJ, Bourne MW, et al. Morphologic predictors of lymph node status in rectal cancer with use of high-spatial-resolution MR imaging with histopatholo-gic comparison[J]. Radiology, 2003, 227(2):371-377.
pmid: 12732695 |
[41] | 张晓鹏, 孙应实. CT与MRI在直肠癌分期诊断中的应用[J]. 中国实用外科杂志, 2010, 30(10):831-834. |
[42] |
Kim JH, Beets GL, Kim MJ, et al. High-resolution MR imaging for nodal staging in rectal cancer: are there any criteria in addition to the size?[J]. Eur J Radiol, 2004, 52(1):78-83.
doi: 10.1016/j.ejrad.2003.12.005 URL |
[43] |
Koh DM, Brown G, Temple L, et al. Rectal cancer: mesorectal lymph nodes at MR imaging with USPIO versus histopathologic findings--initial observations[J]. Radiology, 2004, 231(1):91-99.
doi: 10.1148/radiol.2311030142 URL |
[44] | 余深平, 赵晓娟. 影像学诊断直肠癌转移淋巴结的研究进展[J]. 消化肿瘤杂志(电子版), 20124(1):10-12. |
[45] | Li XT, Sun YS, Tang L, et al. Evaluating local lymph node metastasis with magnetic resonance imaging, endoluminal ultrasound and computed tomography in rectal cancer: a meta-analysis[J]. Colorectal Dis, 2015, 17(6):O129-O135. |
[46] |
Puli SR, Reddy JB, Bechtold ML, et al. Accuracy of endoscopic ultrasound to diagnose nodal invasion by rectal cancers: a meta-analysis and systematic review[J]. Ann Surg Oncol, 2009, 16(5):1255-1265.
doi: 10.1245/s10434-009-0337-4 URL |
[47] | 郑阳春, 周总光. 直肠癌淋巴结转移检测的研究进展[J]. 中华胃肠外科杂志, 2004, 7(6):506-508. |
[48] |
Lahaye MJ, Engelen SM, Nelemans PJ, et al. Imaging for predicting the risk factors--the circumferential resection margin and nodal disease--of local recurrence in rectal cancer: a meta-analysis[J]. Semin Ultrasound CT MR, 2005, 26(4):259-268.
pmid: 16152740 |
[49] |
Zerhouni EA, Rutter C, Hamilton SR, et al. CT and MR imaging in the staging of colorectal carcinoma: report of the Radiology Diagnostic Oncology Group Ⅱ[J]. Radiology, 1996, 200(2):443-451.
pmid: 8685340 |
[50] |
Perez RO, Pereira DD, Proscurshim I, et al. Lymph node size in rectal cancer following neoadjuvant chemoradiation--can we rely on radiologic nodal staging after chemoradiation?[J]. Dis Colon Rectum, 2009, 52(7):1278-1284.
doi: 10.1007/DCR.0b013e3181a0af4b URL |
[51] |
Shin SS, Jeong YY, Min JJ, et al. Preoperative staging of colorectal cancer: CT vs. integrated FDG PET/CT[J]. Abdom Imaging, 2008, 33(3):270-277.
doi: 10.1007/s00261-007-9262-9 URL |
[52] |
MERCURY Study Group. Diagnostic accuracy of preo-perative magnetic resonance imaging in predicting curative resection of rectal cancer: prospective observational study[J]. BMJ, 2006, 333(7572):779.
doi: 10.1136/bmj.38937.646400.55 URL |
[53] |
Wolberink SV, Beets-Tan RG, de Haas-Kock DF, et al. Conventional CT for the prediction of an involved circumferential resection margin in primary rectal cancer[J]. Dig Dis, 2007, 25(1):80-85.
doi: 10.1159/000099174 URL |
[54] |
Liu L, Liu M, Yang Z, et al. Correlation of MRI-detected extramural vascular invasion with regional lymph node metastasis in rectal cancer[J]. Clin Imaging, 2016, 40(3):456-460.
doi: 10.1016/j.clinimag.2016.01.007 URL |
[55] |
Betge J, Pollheimer MJ, Lindtner RA, et al. Intramural and extramural vascular invasion in colorectal cancer: prognostic significance and quality of pathology reporting[J]. Cancer, 2012, 118(3):628-638.
doi: 10.1002/cncr.26310 URL |
[56] |
Smith NJ, Barbachano Y, Norman AR, et al. Prognostic significance of magnetic resonance imaging-detected extramural vascular invasion in rectal cancer[J]. Br J Surg, 2008, 95(2):229-236.
pmid: 17932879 |
[57] | McClelland D, Murray GI. A comprehensive study of extramural venous invasion in colorectal cancer[J]. PLoS One, 2015, 10(12):e0144987. |
[58] |
Lee ES, Kim MJ, Park SC, et al. Magnetic resonance imaging-detected extramural venous invasion in rectal cancer before and after preoperative chemoradiotherapy: diagnostic performance and prognostic significance[J]. Eur Radiol, 2018, 28(2):496-505.
doi: 10.1007/s00330-017-4978-6 URL |
[59] |
Brown G, Radcliffe AG, Newcombe RG, et al. Preoperative assessment of prognostic factors in rectal cancer using high-resolution magnetic resonance imaging[J]. Br J Surg, 2003, 90(3):355-364.
doi: 10.1002/bjs.4034 URL |
[60] |
Smith NJ, Shihab O, Arnaout A, et al. MRI for detection of extramural vascular invasion in rectal cancer[J]. Am J Roentgenol, 2008, 191(5):1517-1522.
doi: 10.2214/AJR.08.1298 pmid: 18941094 |
[61] |
Jhaveri KS, Hosseini-Nik H, Thipphavong S, et al. MRI detection of extramural venous invasion in rectal cancer: correlation with histopathology using elastin stain[J]. Am J Roentgenol, 2016, 206(4):747-755.
doi: 10.2214/AJR.15.15568 pmid: 26933769 |
[62] |
Wong MT, Eu KW. Primary colorectal lymphomas[J]. Colorectal Dis, 2006, 8(7):586-591.
pmid: 16919111 |
[63] |
Purysko AS, Coppa CP, Kalady MF, et al. Benign and malignant tumors of the rectum and perirectal region[J]. Abdom Imaging, 2014, 39(4):824-852.
doi: 10.1007/s00261-014-0119-8 pmid: 24663381 |
[64] |
Sun K, Han R, Han Y, et al. Accuracy of combined computed tomography colonography and dual energy iodine map imaging for detecting colorectal masses using high-pitch dual-source CT[J]. Sci Rep, 2018, 8(1):3790.
doi: 10.1038/s41598-018-22188-x URL |
[65] |
Schaeffer B, Johnson TR, Mang T, et al. Dual-energy CT colonography for preoperative “one-stop” staging in patients with colonic neoplasia[J]. Acad Radiol, 2014, 21(12):1567-1572.
doi: 10.1016/j.acra.2014.07.019 pmid: 25442353 |
[66] | Chuang-Bo Y, Tai-Ping H, Hai-Feng D, et al. Quantitative assessment of the degree of differentiation in colon cancer with dual-energy spectral CT[J]. Abdom Radiol(NY), 2017, 42(11):2591-2596. |
[67] |
Goh V, Halligan S, Daley F, et al. Colorectal tumor vascularity: quantitative assessment with multidetector CT--do tumor perfusion measurements reflect angiogenesis?[J]. Radiology, 2008, 249(2):510-517.
doi: 10.1148/radiol.2492071365 URL |
[68] |
Fan S, Li X, Zheng L, et al. Correlations between the iodine concentrations from dual energy computed tomography and molecular markers Ki-67 and HIF-1α in rectal cancer: a preliminary study[J]. Eur J Radiol, 2017, 96:109-114.
doi: 10.1016/j.ejrad.2017.08.026 URL |
[69] |
Wu J, Lv Y, Wang N, et al. The value of single-source dual-energy CT imaging for discriminating microsatellite instability from microsatellite stability human colorectal cancer[J]. Eur Radiol, 2019, 29(7):3782-3790.
doi: 10.1007/s00330-019-06144-5 URL |
[70] |
Qiu L, Liu XL, Liu SR, et al. Role of quantitative intravoxel incoherent motion parameters in the preoperative diagnosis of nodal metastasis in patients with rectal carcinoma[J]. J Magn Reson Imaging, 2016, 44(4):1031-1039.
doi: 10.1002/jmri.25250 URL |
[71] |
Yu J, Huang DY, Li Y, et al. Correlation of standard diffusion-weighted imaging and diffusion kurtosis imaging with distant metastases of rectal carcinoma[J]. J Magn Reson Imaging, 2016, 44(1):221-229.
doi: 10.1002/jmri.25137 URL |
[72] |
Zhu L, Pan Z, Ma Q, et al. Diffusion kurtosis imaging study of rectal adenocarcinoma associated with histopathologic prognostic factors: preliminary findings[J]. Radiology, 2017, 284(1):66-76.
doi: 10.1148/radiol.2016160094 URL |
[73] |
Zhang XY, Wang L, Zhu HT, et al. Predicting rectal cancer response to neoadjuvant chemoradiotherapy using deep learning of diffusion kurtosis MRI[J]. Radiology, 2020, 296(1):56-64.
doi: 10.1148/radiol.2020190936 URL |
[74] |
Yang L, Dong D, Fang M, et al. Can CT-based radiomics signature predict KRAS/NRAS/BRAF mutations in co-lorectal cancer?[J]. Eur Radiol, 2018, 28(5):2058-2067.
doi: 10.1007/s00330-017-5146-8 pmid: 29335867 |
[75] |
Wu J, Zhang Q, Zhao Y, et al. Radiomics analysis of iodine-based material decomposition images with dual-energy computed tomography imaging for preoperatively predicting microsatellite instability status in colorectal cancer[J]. Front Oncol, 2019, 9:1250.
doi: 10.3389/fonc.2019.01250 URL |
[76] |
Fan S, Li X, Cui X, et al. Computed tomography-based radiomic features could potentially predict microsatellite instability status in stage Ⅱ colorectal cancer: a preliminary study[J]. Acad Radiol, 2019, 26(12):1633-1640.
doi: 10.1016/j.acra.2019.02.009 URL |
[77] | Golia Pernicka JS, Gagniere J, Chakraborty J, et al. Radiomics-based prediction of microsatellite instability in colorectal cancer at initial computed tomography evaluation[J]. Abdom Radiol (NY), 2019, 44(11):3755-3763. |
[78] |
Dai W, Mo S, Han L, et al. Prognostic and predictive value of radiomics signatures in stage Ⅰ-Ⅲ colon cancer[J]. Clin Transl Med, 2020, 10(1):288-293.
doi: 10.1002/ctm2.31 URL |
[79] |
Ding L, Liu G, Zhang X, et al. A deep learning nomogram kit for predicting metastatic lymph nodes in rectal cancer[J]. Cancer Med, 2020, 9(23):8809-8820.
doi: 10.1002/cam4.3490 URL |
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