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Parksong, J.

Publications and source records attributed to Parksong, J..

3 recordsLinked to original sources

Reconstructing the deep phylogeny of the MAPK signaling network: functional specialization via multi-tier coevolutionary expansion

The mitogen-activated protein kinase (MAPK) signaling network is a three-tier cascade that regulates key cellular responses in eukaryotes. However, the evolutionary origins of its complex interactions and functional diversity remain poorly understood. Here, we conducted a comprehensive phylogenetic analysis of MAPK components across Eukarya to delineate divergences of non-human orthologs of human paralogs along the human evolutionary backbone. We identified two major pulses of coevolutionary expansion: one predating the divergence of fungi and animals, and another predating the origin of animals. Our reconstruction also infers a polyphyletic origin for the atypical MAPKs. Integrating functional literature across eukaryotic taxa with our reconstructed trees reveals that the two clades of MAP3K, Sterile-like (STE) and tyrosine kinase-like (TKL), had distinct evolutionary trajectories and influences on downstream pathway diversification. STEs that function as MAP3Ks are conserved across extant eukaryotes. Despite the absence of TKL MAP3Ks in many early diverging eukaryotes, the expansion of TKL MAP3Ks aligns phylogenetically and functionally with that of the downstream MAP2Ks and MAPKs. We thus propose that the MAPK network originated as a STE-regulated pathway, and that subsequent radiations of the TKLs drove the diversification of downstream components and top-down finetuning of pathway specificity. We thus provide an evolutionary framework for generating novel hypotheses on the functional diversity of this key signaling network, including potential insights into the evolution of animal multicellularity. Our study demonstrates that phylogenetics can offer new perspectives towards understanding complex cellular physiology. SignificanceThe mitogen-activated protein kinase (MAPK) signaling network responds to various signals and regulates basic cell physiology including proliferation and apoptosis. This three-tier network is universal in eukaryotes, but there is great functional diversity among different homologs as well as different taxa. Here we compared amino acid sequences to reconstruct MAPK evolutionary history as a network. We found that the three levels expand in parallel, showcasing a special case of coevolution. Two distinct pulses of network expansion predate the origin of animals, indicating that the functional diversity of human MAPK network proteins originate from ancient evolutionary radiations. Together, our study provides a critical look at the deep history of this important network.

evolutionary biology↗

3D histology reveals that immune response to pancreatic precancers is heterogeneous and depends on global pancreas structure

Pancreatic ductal adenocarcinoma (PDAC) is a highly lethal cancer for which few effective therapies exist. Immunotherapies specifically are ineffective in pancreatic cancer, in part due to its unique stromal and immune microenvironment. Pancreatic intraepithelial neoplasia, or PanIN, is the main precursor lesion to PDAC. Recently it was discovered that PanINs are remarkably abundant in the grossly normal pancreas, suggesting that the vast majority will never progress to cancer. Here, through construction of 48 samples of cm3-sized human pancreas tissue, we profiled the immune microenvironment of 1,476 PanINs in 3D and at single-cell resolution to better understand the early evolution of the pancreatic tumor microenvironment and to determine how inflammation may play a role in cancer progression. We found that bulk pancreatic inflammation strongly correlates to PanIN cell fraction. We found that the immune response around PanINs is highly heterogeneous, with distinct immune hotspots and cold spots that appear and disappear in a span of tens of microns. Immune hotspots generally mark locations of higher grade of dysplasia or locations near acinar atrophy. The immune composition at these hotspots is dominated by naive, cytotoxic, and regulatory T cells, cancer associated fibroblasts, and tumor associated macrophages, with little similarity to the immune composition around less-inflamed PanINs. By mapping FOXP3+ cells in 3D, we found that regulatory T cells are present at higher density in larger PanIN lesions compared to smaller PanINs, suggesting that the early initiation of PanINs may not exhibit an immunosuppressive response. This analysis demonstrates that while PanINs are common in the pancreases of most individuals, inflammation may play a pivotal role, both at the bulk and the microscopic scale, in demarcating regions of significance in cancer progression.

cancer biology↗

Reorganizing Niche Architecture Still Preserves Organ Function in the Hair Follicle

Stem cells ability to build and replenish tissues depends on support from their niche. While niche architecture varies across different organs, the functional importance of niche architecture is unclear. During hair follicle growth, multipotent epithelial progenitors build hair via crosstalk with their remodeling fibroblast niche, the dermal papilla, providing a powerful model to functionally interrogate different niche architectures. Through intravital imaging, we show that dermal papilla fibroblasts remodel both individually and collectively to form a polarized, structurally robust niche. Polarized TGF{beta} signaling precedes structural niche polarity, and loss of TGF{beta} signaling in dermal papilla fibroblasts leads them to progressively lose their stereotypic architecture and instead surround the epithelium. The reorganized niche relocates multipotent progenitors, but nevertheless supports their proliferation and differentiation. However, progenitor differentiation is completed prematurely, resulting in compromised hair production. Overall, our results reveal that niche architecture optimizes organ efficiency, but is not absolutely essential for organ function.

developmental biology↗