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	<title>a key mediator of TGF-β-driven fibrosis. Genetic deletion or pharmacological inhibition of DCLK1 reduced fibroblast proliferation &#8211; Science</title>
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	<title>a key mediator of TGF-β-driven fibrosis. Genetic deletion or pharmacological inhibition of DCLK1 reduced fibroblast proliferation &#8211; Science</title>
	<link>https://scienmag.com</link>
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		<title>DCLK1 drives fibroblast activation and lung fibrosis via Smad3 binding</title>
		<link>https://scienmag.com/dclk1-drives-fibroblast-activation-and-lung-fibrosis-via-smad3-binding/</link>
		
		<dc:creator><![CDATA[Nathaniel Bowman]]></dc:creator>
		<pubDate>Thu, 10 Sep 2026 12:41:24 +0000</pubDate>
				<category><![CDATA[Medicine]]></category>
		<category><![CDATA[a key mediator of TGF-β-driven fibrosis. Genetic deletion or pharmacological inhibition of DCLK1 reduced fibroblast proliferation]]></category>
		<category><![CDATA[and lung tissue scarring in mouse models. The research highlights DCLK1 as a novel therapeutic target]]></category>
		<category><![CDATA[and tissue scarring—remained unclear. The study revealed that DCLK1 promotes fibroblast activation through its interaction with Smad3 signaling pathway]]></category>
		<category><![CDATA[collagen deposition]]></category>
		<category><![CDATA[DCLK1 and cancer stem cell pathways in fibrosis]]></category>
		<category><![CDATA[DCLK1 kinase in lung disease]]></category>
		<category><![CDATA[fibroblast activation mechanisms in IPF]]></category>
		<category><![CDATA[fibroblast-driven lung scarring]]></category>
		<category><![CDATA[genetic suppression of DCLK1 in fibrosis models]]></category>
		<category><![CDATA[lung fibroblast activation]]></category>
		<category><![CDATA[lung fibrosis progression and molecular drivers]]></category>
		<category><![CDATA[offering potential for developing treatments that can halt or reverse idiopathic pulmonary]]></category>
		<category><![CDATA[oral DCLK1 inhibitors for pulmonary fibrosis]]></category>
		<category><![CDATA[progression]]></category>
		<category><![CDATA[pulmonary fibrosis]]></category>
		<category><![CDATA[pulmonary fibrosis development]]></category>
		<category><![CDATA[role of DCLK1 in lung tissue remodeling]]></category>
		<category><![CDATA[Smad3 signaling pathway in fibrosis]]></category>
		<category><![CDATA[therapeutic targeting of DCLK1]]></category>
		<guid isPermaLink="false">https://scienmag.com/dclk1-drives-fibroblast-activation-and-lung-fibrosis-via-smad3-binding/</guid>

					<description><![CDATA[Idiopathic pulmonary fibrosis, a relentlessly progressive and fatal scarring disease of the lungs, has long frustrated clinicians with only two approved drugs that slow but cannot reverse its course. Now, a team of researchers in Taiwan has identified a surprising new player in the disease&#8217;s destructive machinery: doublecortin-like kinase 1, or DCLK1, a kinase better [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>Idiopathic pulmonary fibrosis, a relentlessly progressive and fatal scarring disease of the lungs, has long frustrated clinicians with only two approved drugs that slow but cannot reverse its course. Now, a team of researchers in Taiwan has identified a surprising new player in the disease&#8217;s destructive machinery: doublecortin-like kinase 1, or DCLK1, a kinase better known for its role in cancer stem cells. Their study, published in the Journal of Biomedical Science, demonstrates that DCLK1 drives fibroblast activation in the lung and that blocking it—either genetically or with an oral inhibitor—slows fibrosis and preserves lung function in mice. The findings position DCLK1 as a promising therapeutic target in one of medicine&#8217;s most stubborn diseases.</p>
<p>The research, led by Lee-Yuan Lin, Wun-Hao Cheng, Chien-Huang Lin and Bing-Chang Chen of Taipei Medical University, together with collaborators at National Taiwan University Hospital and Universitas Gadjah Mada, began with a question that has lingered in the literature. Gene expression analyses had previously hinted that DCLK1 might be implicated in IPF, and earlier work reported that the kinase is markedly enhanced in the alveolar epithelial cells of patients with pulmonary fibrosis and in mice with bleomycin-induced fibrosis. But its function in fibroblast activation—the cellular engine of fibrosis—had remained unexplained.</p>
<p>To begin untangling that role, the team mined a publicly available single-cell RNA sequencing data set containing more than 312,000 cells from healthy lungs, IPF lungs, and lungs with chronic obstructive pulmonary disease. After stringent quality control filtering, they focused on roughly 240,000 cells from the control and IPF groups and mapped DCLK1 expression across the major lung cell lineages: epithelial, endothelial, lymphoid, myeloid, and stromal cells. The signal was unmistakable. DCLK1 was expressed across many cell populations, but the highest expression appeared in the stromal compartment, particularly in myofibroblasts—the specialized, contractile fibroblasts that churn out the extracellular matrix and stiffen lung tissue in IPF.</p>
<p>Human tissue told the same story. The researchers examined lung samples from eleven patients with IPF, obtained during lung transplantation or surgery, alongside fourteen nonfibrotic control samples. Histological staining with hematoxylin and eosin and Masson trichrome confirmed the expected picture of interstitial consolidation and collagen deposition in the IPF specimens. More importantly, immunohistochemistry revealed that both total DCLK1 and its phosphorylated, activated form were significantly upregulated in the fibrotic lung interstitium compared with control tissue. DCLK1, in other words, was not merely present in scarred lungs—it was switched on.</p>
<p>DCLK1 is an intriguing molecule to find at the center of a fibrotic process. It is a serine/threonine kinase belonging to the calcium/calmodulin-dependent kinase family, distinguished by two microtubule-binding domains. In oncology, DCLK1 overexpression has been documented in colorectal, pancreatic, gastric, renal, and hepatocellular carcinomas, where it correlates with poor prognosis, high recurrence, and metastasis, promoting tumor initiation and the epithelial–mesenchymal transition in cancer stem cells. It has also been linked to inflammatory signaling in SARS-CoV-2 infection, where inhibiting it blocks proinflammatory caspase-1/interleukin-1β signaling. The new study extends this portfolio of mischief to the fibrotic lung.</p>
<p>To test causality rather than mere correlation, the researchers turned to mice. They crossed animals carrying loxP sites flanking exon 3 of the DCLK1 locus with Pgk1-RFP-Cre/ERT2 transgenic mice, generating a system in which tamoxifen administration triggers global deletion of the Dclk1 gene. When these DCLK1 knockout mice and littermate controls were given intratracheal bleomycin, a chemotherapy drug used to induce pulmonary fibrosis in laboratory animals, the difference was striking. Knockout mice showed far less lung infiltration and collagen deposition, reduced numbers of cells staining positive for DCLK1 together with fibroblast surface protein and alpha-smooth muscle actin, and significantly lower levels of the profibrotic proteins fibronectin, α-SMA, and connective tissue growth factor, or CTGF.</p>
<p>The protective effect extended well beyond molecular markers. Using the FlexiVent FX system to measure lung mechanics, the team found that bleomycin treatment significantly reduced respiratory system compliance and pressure–volume performance and increased the normalized work of breathing in control mice—hallmarks of a stiffening, fibrotic lung. In the DCLK1 knockout animals, these functional deficits were substantially attenuated. In vivo microcomputed tomography, acquired at 34.75-micrometer voxel resolution, painted the morphological counterpart: bleomycin caused parenchymal destruction and volume loss in control lungs, while knockout mice retained lung structure and volume. Density histograms shifted toward fibrotic tissue in wild-type animals but stayed largely preserved in the knockouts, and peripheral blood neutrophil percentages, which climbed after bleomycin injury, were significantly reduced in the knockout group.</p>
<p>With the in vivo evidence established, the investigators dissected the molecular wiring in cultured normal human lung fibroblasts. Transforming growth factor beta, the master profibrotic cytokine, induced DCLK1 phosphorylation within 30 minutes and DCLK1 expression within 8 hours. Chromatin immunoprecipitation assays showed that after TGF-β stimulation, both Smad3—the canonical transcriptional mediator of TGF-β signaling—and the nuclear factor kappa B subunit p65 enriched at the DCLK1 promoter, indicating that TGF-β switches on DCLK1 through both Smad-dependent and noncanonical NF-κB pathways. Silencing DCLK1 with small interfering RNA then blunted the fibroblast&#8217;s profibrotic response, reducing TGF-β-induced expression of fibronectin, collagen 1A1, α-SMA, and CTGF.</p>
<p>The pathway, however, does not stop there. The team found that TGF-β also phosphorylated Akt, and that transfecting fibroblasts with a dominant-negative Akt construct reduced TGF-β-induced DCLK1 phosphorylation and the expression of fibronectin and CTGF—placing Akt upstream of DCLK1. Downstream, DCLK1 knockdown reduced Smad3 phosphorylation while DCLK1 overexpression enhanced it. Coimmunoprecipitation revealed a physical association between DCLK1 and Smad3, and immunofluorescence microscopy showed the two proteins colocalizing in the nucleus within 30 minutes of TGF-β treatment. A ChIP assay using a DCLK1 antibody pulled down DNA from the Smad3-binding region of the CTGF promoter, and pretreatment with the selective DCLK1 inhibitor DCLK1-IN-1 reduced TGF-β-induced CTGF expression. Together, the results sketch an Akt/DCLK1/Smad3 axis through which TGF-β drives the production of connective tissue growth factor, a potent profibrotic mediator.</p>
<p>The clinical payoff came in the pharmacological arm of the study. Mice receiving oral DCLK1-IN-1 at 10 milligrams per kilogram daily, beginning on day 7 after bleomycin instillation and continuing until day 28, showed visibly reduced fibrotic progression on histology, lower expression of fibronectin, α-SMA, and CTGF in lung tissue and lysates, preserved pulmonary compliance, improved pressure–volume loops, and reduced work of breathing. Serial microCT scans on days 7, 17, and 27 documented less severe fibrotic remodeling in the treated animals, with lung attenuation histograms showing a smaller fraction of dense, nonaerated voxels. Blood neutrophil counts were also lower. In short, a pill-like oral inhibitor measurably slowed the disease in a model that mirrors the human condition.</p>
<p>The implications are significant because the current therapeutic landscape for IPF is so thin. Only nintedanib, a tyrosine kinase inhibitor targeting growth factor receptors, and pirfenidone, which suppresses TGF-β production and activity, are approved by the US Food and Drug Administration, and both merely slow progression. The recent failure of pamrevlumab, a monoclonal antibody against CTGF, in the phase 3 ZEPHYRUS-1 trial suggested that targeting downstream fibrotic end products alone may be insufficient—pointing to the value of upstream signaling regulators such as DCLK1. Adding to the appeal, a DCLK1 inhibitor has already been shown to prevent inflammatory responses in acute lung injury, hinting at dual anti-fibrotic and anti-inflammatory potential.</p>
<p>The authors are careful to note limitations. DCLK1 is expressed across multiple lung cell types, and the tamoxifen-inducible knockout used here was global rather than cell-type-specific, so the contributions of fibroblasts versus epithelial, endothelial, and immune cells could not be fully separated. Human control tissue, as in most fibrosis studies, came from heterogeneous sources, including tumor-adjacent lung. The precise subcellular mechanics of the DCLK1–Smad3 interaction, whether DCLK1 inhibition can promote fibrosis resolution rather than merely slow progression, and the systemic safety of long-term DCLK1 blockade—all relevant given the kinase&#8217;s role in cancer and other processes—remain open questions.</p>
<p>Even so, the convergence of evidence is striking: DCLK1 is upregulated in human IPF, amplified in experimental fibrosis, mechanistically coupled to the TGF-β–Smad3 engine of fibroblast activation, and its suppression by both genetics and a small molecule preserves lung structure and function. What began as a cancer stem cell marker has now emerged, unexpectedly, as a central node in the scarring of the lung—offering fresh hope that a disease long considered irreversible may one day be stopped at its molecular source.</p>
<div class="scienmag-article-metadata"><strong>Subject of Research:</strong> Medicine</p>
<p><strong>Article Title:</strong> DCLK1 drives fibroblast activation and lung fibrosis via Smad3 binding</p>
<p><strong>Article References:</strong> Lin, L.-Y., Cheng, W.-H., Wu, Y.-C., Wen, H.-C., Hsu, H.-H., Liu, C.-H., Chen, J.-Y., Chang, W.-S., Wu, Y.-J., Wu, J.-S., Yuliani, F. S., Wang, C.-Y., Lin, C.-H., &amp; Chen, B.-C. (2026). Doublecortin-like kinase 1 promotes fibroblast activation and fibrotic progression through Smad3 binding in idiopathic pulmonary fibrosis. <em>Journal of Biomedical Science, 33</em>(1), Article 52. <a href="https://doi.org/10.1186/s12929-026-01258-7" target="_blank" rel="noopener noreferrer">https://doi.org/10.1186/s12929-026-01258-7</a></p>
<p><strong>Image Credits:</strong> AI Generated</p>
<p><strong>DOI:</strong> <a href="https://doi.org/10.1186/s12929-026-01258-7" target="_blank" rel="noopener noreferrer">10.1186/s12929-026-01258-7</a></p>
<p><strong>Keywords:</strong> DCLK1 and cancer stem cell pathways in fibrosis, DCLK1 kinase in lung disease, fibroblast activation mechanisms in IPF, fibroblast-driven lung scarring, genetic suppression of DCLK1 in fibrosis models, lung fibroblast activation, lung fibrosis progression and molecular drivers, oral DCLK1 inhibitors for pulmonary fibrosis, pulmonary fibrosis, role of DCLK1 in lung tissue remodeling, Smad3 signaling pathway in fibrosis, therapeutic targeting of DCLK1</p>
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