» Articles » PMID: 36206577

Subcapsular Sinus Macrophages Promote Melanoma Metastasis to the Sentinel Lymph Nodes Via an IL1α-STAT3 Axis

Abstract

During melanoma metastasis, tumor cells originating in the skin migrate via lymphatic vessels to the sentinel lymph node (sLN). This process facilitates tumor cell spread across the body. Here, we characterized the innate inflammatory response to melanoma in the metastatic microenvironment of the sLN. We found that macrophages located in the subcapsular sinus (SS) produced protumoral IL1α after recognition of tumoral antigens. Moreover, we confirmed that the elimination of LN macrophages or the administration of an IL1α-specific blocking antibody reduced metastatic spread. To understand the mechanism of action of IL1α in the context of the sLN microenvironment, we applied single-cell RNA sequencing to microdissected metastases obtained from animals treated with the IL1α-specific blocking antibody. Among the different pathways affected, we identified STAT3 as one of the main targets of IL1α signaling in metastatic tumor cells. Moreover, we found that the antitumoral effect of the anti-IL1α was not mediated by lymphocytes because Il1r1 knockout mice did not show significant differences in metastasis growth. Finally, we found a synergistic antimetastatic effect of the combination of IL1α blockade and STAT3 inhibition with stattic, highlighting a new immunotherapy approach to preventing melanoma metastasis.

Citing Articles

Cellular components of tumor microenvironment: understanding their role in lymphatic metastasis of tumors.

Wang Z, Li Z, Sun X, Men W, Xu Y Front Pharmacol. 2024; 15:1463538.

PMID: 39726782 PMC: 11670069. DOI: 10.3389/fphar.2024.1463538.


Metabolic insights into tumor lymph node metastasis in melanoma.

Huang J, Gao Z, Xuan J, Gao N, Wei C, Gu J Cell Oncol (Dordr). 2024; 47(6):2099-2112.

PMID: 39704926 DOI: 10.1007/s13402-024-01027-4.


Difference between sentinel and non-sentinel lymph nodes in the distribution of dendritic cells and macrophages: An immunohistochemical and morphometric study using gastric regional nodes obtained in sentinel node navigation surgery for early....

Sonoda T, Arigami T, Aoki M, Matsushita D, Shimonosono M, Tsuruda Y J Anat. 2024; 246(2):272-287.

PMID: 39367691 PMC: 11737316. DOI: 10.1111/joa.14147.


Mechanisms and characteristics of subcapsular sinus macrophages in tumor immunity: a narrative review.

Su F, Zhang Y, Maimaiti S, Chen S, Shen Y, Feng M Transl Cancer Res. 2024; 12(12):3779-3791.

PMID: 38192994 PMC: 10774050. DOI: 10.21037/tcr-23-2032.


Delineating the early dissemination mechanisms of acral melanoma by integrating single-cell and spatial transcriptomic analyses.

Wei C, Sun W, Shen K, Zhong J, Liu W, Gao Z Nat Commun. 2023; 14(1):8119.

PMID: 38065972 PMC: 10709603. DOI: 10.1038/s41467-023-43980-y.


References
1.
Culhane A, Thioulouse J, Perriere G, Higgins D . MADE4: an R package for multivariate analysis of gene expression data. Bioinformatics. 2005; 21(11):2789-90. DOI: 10.1093/bioinformatics/bti394. View

2.
Werman A, Werman-Venkert R, White R, Lee J, Werman B, Krelin Y . The precursor form of IL-1alpha is an intracrine proinflammatory activator of transcription. Proc Natl Acad Sci U S A. 2004; 101(8):2434-9. PMC: 356968. DOI: 10.1073/pnas.0308705101. View

3.
Trujillo J, Sweis R, Bao R, Luke J . T Cell-Inflamed versus Non-T Cell-Inflamed Tumors: A Conceptual Framework for Cancer Immunotherapy Drug Development and Combination Therapy Selection. Cancer Immunol Res. 2018; 6(9):990-1000. PMC: 6145135. DOI: 10.1158/2326-6066.CIR-18-0277. View

4.
Togashi Y, Shitara K, Nishikawa H . Regulatory T cells in cancer immunosuppression - implications for anticancer therapy. Nat Rev Clin Oncol. 2019; 16(6):356-371. DOI: 10.1038/s41571-019-0175-7. View

5.
Zou S, Tong Q, Liu B, Huang W, Tian Y, Fu X . Targeting STAT3 in Cancer Immunotherapy. Mol Cancer. 2020; 19(1):145. PMC: 7513516. DOI: 10.1186/s12943-020-01258-7. View