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Published in: Head and Neck Pathology 4/2022

14-07-2022 | Original Paper

NKX3.1 Expression in Salivary Gland “Intraductal” Papillary Mucinous Neoplasm: A Low-Grade Subtype of Salivary Gland Mucinous Adenocarcinoma

Authors: Masato Nakaguro, Peter M. Sadow, Rong Hu, Hikaru Hattori, Kyoko Kuwabara, Toyonori Tsuzuki, Makoto Urano, Toshitaka Nagao, William C. Faquin

Published in: Head and Neck Pathology | Issue 4/2022

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Abstract

Background

Salivary gland intraductal papillary mucinous neoplasm (SG IPMN) is a recently proposed entity characterized by a papillary-cystic proliferation of mucin-producing cells. Because of overlapping histologic features and a clonal AKT1 p.E17K variant, SG IPMN has been presumed to be a precursor or a low-grade subtype of mucinous adenocarcinoma. NKX3.1 is a tumor suppressor gene located on chromosome 8p and is a known immunohistochemical marker of prostate epithelium and mucinous acinar cells of the intraoral salivary glands.

Methods

We retrieved 12 SG IPMN cases, and performed histologic and genetic analysis. Given the association of SG IPMN with mucinous acinar cells, we also investigated the performance of NKX3.1 as a marker of this tumor entity.

Results

Diffuse and strong NKX3.1 expression was observed in all SG IPMN cases (12/12, 100%) as well as in normal mucinous acinar cells. In contrast, mucoepidermoid carcinoma and pancreatic IPMN cases as well as normal serous acinar cells were negative for NKX3.1. Genetically, 11 of 12 cases (92%) harbored an AKT1 p.E17K variant. A novel PTEN frameshift deletion (p.G36Dfs*18) was detected in the other single case. At least one of the histologic features implying malignant tumors, such as severe cellular atypia, brisk mitotic activity, high Ki-67 proliferating index, lymphovascular invasion, and lymph node metastasis, was detected in 6 SG IPMN cases (50%).

Conclusion

The findings suggest that SG IPMN is a low-grade subtype of mucinous adenocarcinoma which may be derived from mucinous acinar cells of the minor salivary gland.
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Literature
2.
go back to reference Rooper LM, Argyris PP, Thompson LDR, Gagan J, Westra WH, Jordan RC, et al. Salivary mucinous adenocarcinoma is a histologically diverse single entity with recurrent AKT1 E17K mutations: clinicopathologic and molecular characterization with proposal for a unified classification. Am J Surg Pathol. 2021;45(10):1337–47.CrossRef Rooper LM, Argyris PP, Thompson LDR, Gagan J, Westra WH, Jordan RC, et al. Salivary mucinous adenocarcinoma is a histologically diverse single entity with recurrent AKT1 E17K mutations: clinicopathologic and molecular characterization with proposal for a unified classification. Am J Surg Pathol. 2021;45(10):1337–47.CrossRef
3.
go back to reference Agaimy A, Mueller SK, Bumm K, Iro H, Moskalev EA, Hartmann A, et al. Intraductal papillary mucinous neoplasms of minor salivary glands with AKT1 p.Glu17Lys mutation. Am J Surg Pathol. 2018;42(8):1076–82.CrossRef Agaimy A, Mueller SK, Bumm K, Iro H, Moskalev EA, Hartmann A, et al. Intraductal papillary mucinous neoplasms of minor salivary glands with AKT1 p.Glu17Lys mutation. Am J Surg Pathol. 2018;42(8):1076–82.CrossRef
4.
go back to reference Nakaguro M, Urano M, Ogawa I, Hirai H, Yamamoto Y, Yamaguchi H, et al. Histopathological evaluation of minor salivary gland papillary-cystic tumours: focus on genetic alterations in sialadenoma papilliferum and intraductal papillary mucinous neoplasm. Histopathology. 2020;76(3):411–22.CrossRef Nakaguro M, Urano M, Ogawa I, Hirai H, Yamamoto Y, Yamaguchi H, et al. Histopathological evaluation of minor salivary gland papillary-cystic tumours: focus on genetic alterations in sialadenoma papilliferum and intraductal papillary mucinous neoplasm. Histopathology. 2020;76(3):411–22.CrossRef
5.
go back to reference Skálová A, Hyrcza MD, Leivo I. Update from the 5th edition of the World Health Organization classification of head and neck tumors: salivary glands. Head Neck Pathol. 2022;16(1):40–53.CrossRef Skálová A, Hyrcza MD, Leivo I. Update from the 5th edition of the World Health Organization classification of head and neck tumors: salivary glands. Head Neck Pathol. 2022;16(1):40–53.CrossRef
6.
go back to reference Bishop JA. Proceedings of the North American Society of Head and Neck Pathology, Los Angeles, CA, March 20, 2022: emerging entities in salivary gland tumor pathology. Head Neck Pathol. 2022;16(1):179–89.CrossRef Bishop JA. Proceedings of the North American Society of Head and Neck Pathology, Los Angeles, CA, March 20, 2022: emerging entities in salivary gland tumor pathology. Head Neck Pathol. 2022;16(1):179–89.CrossRef
7.
go back to reference Griffin J, Chen Y, Catto JWF, El-Khamisy S. Gene of the month: NKX3.1. J Clin Pathol. 2022;75(6):361–4.CrossRef Griffin J, Chen Y, Catto JWF, El-Khamisy S. Gene of the month: NKX3.1. J Clin Pathol. 2022;75(6):361–4.CrossRef
8.
go back to reference Schneider A, Brand T, Zweigerdt R, Arnold H. Targeted disruption of the Nkx3.1 gene in mice results in morphogenetic defects of minor salivary glands: parallels to glandular duct morphogenesis in prostate. Mech Dev. 2000;95(1–2):163–74.CrossRef Schneider A, Brand T, Zweigerdt R, Arnold H. Targeted disruption of the Nkx3.1 gene in mice results in morphogenetic defects of minor salivary glands: parallels to glandular duct morphogenesis in prostate. Mech Dev. 2000;95(1–2):163–74.CrossRef
9.
go back to reference Gurel B, Ali TZ, Montgomery EA, Begum S, Hicks J, Goggins M, et al. NKX3.1 as a marker of prostatic origin in metastatic tumors. Am J Surg Pathol. 2010;34(8):1097–105.CrossRef Gurel B, Ali TZ, Montgomery EA, Begum S, Hicks J, Goggins M, et al. NKX3.1 as a marker of prostatic origin in metastatic tumors. Am J Surg Pathol. 2010;34(8):1097–105.CrossRef
10.
go back to reference Tanaka M, Komuro I, Inagaki H, Jenkins NA, Copeland NG, Izumo S. Nkx3.1, a murine homolog of Ddrosophila bagpipe, regulates epithelial ductal branching and proliferation of the prostate and palatine glands. Dev Dyn. 2000;219(2):248–60.CrossRef Tanaka M, Komuro I, Inagaki H, Jenkins NA, Copeland NG, Izumo S. Nkx3.1, a murine homolog of Ddrosophila bagpipe, regulates epithelial ductal branching and proliferation of the prostate and palatine glands. Dev Dyn. 2000;219(2):248–60.CrossRef
11.
go back to reference Yoshida KI, Machado I, Motoi T, Parafioriti A, Lacambra M, Ichikawa H, et al. NKX3-1 is a useful immunohistochemical marker of EWSR1-NFATC2 sarcoma and mesenchymal chondrosarcoma. Am J Surg Pathol. 2020;44(6):719–28.CrossRef Yoshida KI, Machado I, Motoi T, Parafioriti A, Lacambra M, Ichikawa H, et al. NKX3-1 is a useful immunohistochemical marker of EWSR1-NFATC2 sarcoma and mesenchymal chondrosarcoma. Am J Surg Pathol. 2020;44(6):719–28.CrossRef
12.
go back to reference Takada N, Nishida H, Oyama Y, Kusaba T, Kadowaki H, Arakane M, et al. Immunohistochemical reactivity of prostate-specific markers for salivary duct carcinoma. Pathobiology. 2020;87(1):30–6.CrossRef Takada N, Nishida H, Oyama Y, Kusaba T, Kadowaki H, Arakane M, et al. Immunohistochemical reactivity of prostate-specific markers for salivary duct carcinoma. Pathobiology. 2020;87(1):30–6.CrossRef
13.
go back to reference Yang RK, Zhao P, Lu C, Luo J, Hu R. Expression pattern of androgen receptor and AR-V7 in androgen-deprivation therapy-naïve salivary duct carcinomas. Hum Pathol. 2019;84:173–82.CrossRef Yang RK, Zhao P, Lu C, Luo J, Hu R. Expression pattern of androgen receptor and AR-V7 in androgen-deprivation therapy-naïve salivary duct carcinomas. Hum Pathol. 2019;84:173–82.CrossRef
14.
go back to reference Agaimy A. Papillary neoplasms of the salivary duct system: a review. Surg Pathol Clin. 2021;14(1):53–65.CrossRef Agaimy A. Papillary neoplasms of the salivary duct system: a review. Surg Pathol Clin. 2021;14(1):53–65.CrossRef
15.
go back to reference Zheng Z, Liebers M, Zhelyazkova B, Cao Y, Panditi D, Lynch KD, et al. Anchored multiplex PCR for targeted next-generation sequencing. Nat Med. 2014;20(12):1479–84.CrossRef Zheng Z, Liebers M, Zhelyazkova B, Cao Y, Panditi D, Lynch KD, et al. Anchored multiplex PCR for targeted next-generation sequencing. Nat Med. 2014;20(12):1479–84.CrossRef
16.
go back to reference Chu YH, Wirth LJ, Farahani AA, Nosé V, Faquin WC, Dias-Santagata D, et al. Clinicopathologic features of kinase fusion-related thyroid carcinomas: an integrative analysis with molecular characterization. Mod Pathol. 2020;33(12):2458–72.CrossRef Chu YH, Wirth LJ, Farahani AA, Nosé V, Faquin WC, Dias-Santagata D, et al. Clinicopathologic features of kinase fusion-related thyroid carcinomas: an integrative analysis with molecular characterization. Mod Pathol. 2020;33(12):2458–72.CrossRef
17.
go back to reference Urano M, Nakaguro M, Yamamoto Y, Hirai H, Tanigawa M, Saigusa N, et al. Diagnostic significance of HRAS mutations in epithelial-myoepithelial carcinomas exhibiting a broad histopathologic spectrum. Am J Surg Pathol. 2019;43(7):984–94.CrossRef Urano M, Nakaguro M, Yamamoto Y, Hirai H, Tanigawa M, Saigusa N, et al. Diagnostic significance of HRAS mutations in epithelial-myoepithelial carcinomas exhibiting a broad histopathologic spectrum. Am J Surg Pathol. 2019;43(7):984–94.CrossRef
18.
go back to reference Furukawa T, Kuboki Y, Tanji E, Yoshida S, Hatori T, Yamamoto M, et al. Whole-exome sequencing uncovers frequent GNAS mutations in intraductal papillary mucinous neoplasms of the pancreas. Sci Rep. 2011;1:161.CrossRef Furukawa T, Kuboki Y, Tanji E, Yoshida S, Hatori T, Yamamoto M, et al. Whole-exome sequencing uncovers frequent GNAS mutations in intraductal papillary mucinous neoplasms of the pancreas. Sci Rep. 2011;1:161.CrossRef
19.
go back to reference Nakaguro M, Tada Y, Faquin WC, Sadow PM, Wirth LJ, Nagao T. Salivary duct carcinoma: updates in histology, cytology, molecular biology, and treatment. Cancer Cytopathol. 2020;128(10):693–703.CrossRef Nakaguro M, Tada Y, Faquin WC, Sadow PM, Wirth LJ, Nagao T. Salivary duct carcinoma: updates in histology, cytology, molecular biology, and treatment. Cancer Cytopathol. 2020;128(10):693–703.CrossRef
20.
go back to reference Vivanco I, Sawyers CL. The phosphatidylinositol 3-Kinase AKT pathway in human cancer. Nat Rev Cancer. 2002;2(7):489–501.CrossRef Vivanco I, Sawyers CL. The phosphatidylinositol 3-Kinase AKT pathway in human cancer. Nat Rev Cancer. 2002;2(7):489–501.CrossRef
21.
go back to reference Engelman JA. Targeting PI3K signalling in cancer: opportunities, challenges and limitations. Nat Rev Cancer. 2009;9(8):550–62.CrossRef Engelman JA. Targeting PI3K signalling in cancer: opportunities, challenges and limitations. Nat Rev Cancer. 2009;9(8):550–62.CrossRef
22.
go back to reference Yang S, Zeng M, Chen X. Intraductal papillary mucinous neoplasm of the minor salivary gland with associated invasive micropapillary carcinoma. Am J Surg Pathol. 2019;43(10):1439–42.CrossRef Yang S, Zeng M, Chen X. Intraductal papillary mucinous neoplasm of the minor salivary gland with associated invasive micropapillary carcinoma. Am J Surg Pathol. 2019;43(10):1439–42.CrossRef
23.
go back to reference Miura A, Mori T, Yoshida A, Watanabe Y, Sunami K, Watanabe S, et al. Primary adenocarcinoma of the trachea revealing a mucinous bronchial gland cell origin. Pathol Res Pract. 2018;214(5):796–9.CrossRef Miura A, Mori T, Yoshida A, Watanabe Y, Sunami K, Watanabe S, et al. Primary adenocarcinoma of the trachea revealing a mucinous bronchial gland cell origin. Pathol Res Pract. 2018;214(5):796–9.CrossRef
Metadata
Title
NKX3.1 Expression in Salivary Gland “Intraductal” Papillary Mucinous Neoplasm: A Low-Grade Subtype of Salivary Gland Mucinous Adenocarcinoma
Authors
Masato Nakaguro
Peter M. Sadow
Rong Hu
Hikaru Hattori
Kyoko Kuwabara
Toyonori Tsuzuki
Makoto Urano
Toshitaka Nagao
William C. Faquin
Publication date
14-07-2022
Publisher
Springer US
Published in
Head and Neck Pathology / Issue 4/2022
Electronic ISSN: 1936-0568
DOI
https://doi.org/10.1007/s12105-022-01471-4

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