<?xml version="1.0" encoding="UTF-8"?><rss version="2.0"
	xmlns:content="http://purl.org/rss/1.0/modules/content/"
	xmlns:wfw="http://wellformedweb.org/CommentAPI/"
	xmlns:dc="http://purl.org/dc/elements/1.1/"
	xmlns:atom="http://www.w3.org/2005/Atom"
	xmlns:sy="http://purl.org/rss/1.0/modules/syndication/"
	xmlns:slash="http://purl.org/rss/1.0/modules/slash/"
	>

<channel>
	<title>ferroptosis inhibition strategies &#8211; Science</title>
	<atom:link href="https://scienmag.com/tag/ferroptosis-inhibition-strategies/feed/" rel="self" type="application/rss+xml" />
	<link>https://scienmag.com</link>
	<description></description>
	<lastBuildDate>Fri, 28 Aug 2026 14:46:35 +0000</lastBuildDate>
	<language>en-US</language>
	<sy:updatePeriod>
	hourly	</sy:updatePeriod>
	<sy:updateFrequency>
	1	</sy:updateFrequency>
	<generator>https://wordpress.org/?v=7.1</generator>

<image>
	<url>https://scienmag.com/wp-content/uploads/2024/07/cropped-scienmag_ico-32x32.jpg</url>
	<title>ferroptosis inhibition strategies &#8211; Science</title>
	<link>https://scienmag.com</link>
	<width>32</width>
	<height>32</height>
</image> 
<site xmlns="com-wordpress:feed-additions:1">73899611</site>	<item>
		<title>SREBF2 protects failing hearts from ferroptosis via Cav-1-regulated PINK1/Parkin mitophagy</title>
		<link>https://scienmag.com/srebf2-protects-failing-hearts-from-ferroptosis-via-cav-1-regulated-pink1-parkin-mitophagy/</link>
		
		<dc:creator><![CDATA[Juliet Wilcox]]></dc:creator>
		<pubDate>Fri, 28 Aug 2026 14:46:31 +0000</pubDate>
				<category><![CDATA[Medicine]]></category>
		<category><![CDATA[Cav-1 regulated mitophagy]]></category>
		<category><![CDATA[Cav-1-regulated PINK1/Parkin pathway]]></category>
		<category><![CDATA[cholesterol gene in cardiac cell death]]></category>
		<category><![CDATA[cholesterol-regulating genes and heart health]]></category>
		<category><![CDATA[ferroptosis in cardiovascular injury]]></category>
		<category><![CDATA[ferroptosis inhibition strategies]]></category>
		<category><![CDATA[ferroptosis prevention in ischemic heart disease]]></category>
		<category><![CDATA[ischemic heart failure mechanisms]]></category>
		<category><![CDATA[lipid regulation and cardiac protection]]></category>
		<category><![CDATA[lipid regulation and mitochondrial quality control]]></category>
		<category><![CDATA[mitochondrial quality control in heart failure]]></category>
		<category><![CDATA[mitochondrial recycling in heart disease]]></category>
		<category><![CDATA[mitochondrial recycling in heart health]]></category>
		<category><![CDATA[molecular pathways protecting injured hearts]]></category>
		<category><![CDATA[myocardial infarction tissue repair]]></category>
		<category><![CDATA[PINK1 Parkin pathway in heart failure]]></category>
		<category><![CDATA[preclinical strategies for ischemic heart failure]]></category>
		<category><![CDATA[preclinical studies on cardiac cell death]]></category>
		<category><![CDATA[role of caveolin-1 in cardiac mitochondrial maintenance]]></category>
		<category><![CDATA[SREBF2 heart protection]]></category>
		<category><![CDATA[SREBF2 role in ferroptosis prevention]]></category>
		<guid isPermaLink="false">https://scienmag.com/srebf2-protects-failing-hearts-from-ferroptosis-via-cav-1-regulated-pink1-parkin-mitophagy/</guid>

					<description><![CDATA[A gene best known for controlling cholesterol production has emerged as a potential defender against the chain of mitochondrial damage that drives heart failure after a heart attack. In a study published in the Journal of Molecular Medicine, researchers report that SREBF2 helps damaged heart cells remove defective mitochondria and resist ferroptosis, an iron-dependent form [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>A gene best known for controlling cholesterol production has emerged as a potential defender against the chain of mitochondrial damage that drives heart failure after a heart attack. In a study published in the <em>Journal of Molecular Medicine</em>, researchers report that SREBF2 helps damaged heart cells remove defective mitochondria and resist ferroptosis, an iron-dependent form of cell death increasingly linked to cardiovascular injury. The protection depended on a molecular pathway involving caveolin-1, or Cav-1, and the mitochondrial quality-control proteins PINK1 and Parkin. In mice, increasing SREBF2 activity improved cardiac function, reduced the size of infarcted tissue and limited fibrosis after myocardial infarction. The findings point to a previously unrecognized connection between lipid regulation, mitochondrial recycling and the long-term deterioration of the heart following an ischemic event. They also suggest that restoring this pathway could eventually provide a new strategy for treating ischemic heart failure, although the work remains preclinical and does not yet establish a therapy for patients.</p>
<p>Heart failure following myocardial infarction remains a major cause of cardiovascular illness and death. A blocked coronary artery deprives cardiac muscle of oxygen, and even when blood flow is restored, the sudden return of oxygen can intensify oxidative stress and injure cells that survived the initial ischemic episode. Over time, the heart may enlarge, stiffen and replace lost muscle with scar tissue, a process known as adverse remodeling. The researchers focused on ferroptosis because it differs from more familiar forms of cell death. Rather than being driven primarily by caspases or by the orderly dismantling characteristic of apoptosis, ferroptosis results from the accumulation of iron and the uncontrolled oxidation of polyunsaturated fatty acids in cell membranes. As lipid peroxides build up, membranes lose their integrity. The antioxidant enzyme GPX4 normally prevents this damage by using reduced glutathione, or GSH, to convert lipid peroxides into less harmful molecules. When this defense fails, iron-catalyzed chemistry can push the cell beyond repair.</p>
<p>To search for regulators of this process in post-infarction heart failure, the team first analyzed the GSE24519 gene-expression dataset and compared differentially expressed genes with genes associated with ferroptosis. SREBF2 stood out as a candidate. The gene encodes sterol regulatory element-binding protein 2, a transcription factor classically associated with cholesterol homeostasis. In its active form, SREBF2 enters the nucleus and binds DNA sequences that control genes involved in sterol synthesis and uptake. The new results indicate that its influence extends beyond cholesterol metabolism. SREBF2 was significantly reduced in human heart-failure samples, in mouse hearts subjected to myocardial infarction and heart-muscle cells exposed to oxygen-glucose deprivation, a laboratory model of ischemic stress. The convergence of observations across human tissue, animals and cultured cardiomyocytes strengthened the case that SREBF2 responds to clinically relevant cardiac injury rather than being an incidental signal in a single experimental system.</p>
<p>The researchers then increased SREBF2 expression in mice after inducing myocardial infarction. Compared with injured animals lacking the intervention, mice with elevated SREBF2 showed improved measures of cardiac performance, smaller infarct regions and less fibrosis. Fibrosis is the excessive deposition of structural proteins such as collagen that can preserve the shape of damaged tissue but also make the ventricle less elastic and disrupt electrical and mechanical coordination. The reported improvements were accompanied by evidence of more favorable myocardial remodeling. In cultured cardiomyocytes, SREBF2 overexpression also reduced the biochemical signature of ferroptosis. Levels of reactive oxygen species, malondialdehyde and ferrous iron were lower, while GSH and GPX4 were restored. ACSL4, an enzyme that helps incorporate vulnerable polyunsaturated fatty acids into membrane lipids and is widely used as a ferroptosis-associated marker, was reduced. Together, these changes indicate that SREBF2 did not merely improve a general stress response; it shifted the cells away from the chemical conditions that allow iron-driven lipid damage to escalate.</p>
<p>The central clue came from the mitochondria, the organelles that generate most of a cardiomyocyte’s ATP. Heart-muscle cells rely heavily on oxidative phosphorylation, so damaged mitochondria can rapidly become a liability: they produce excessive reactive oxygen species, lose their electrochemical gradient and amplify metabolic stress. The study found that SREBF2 improved mitochondrial membrane potential, denoted ΔΨm, while reducing mitochondrial reactive oxygen species. It also helped rebalance mitochondrial dynamics, the continual cycle of fission and fusion that allows the organelles to distribute energy, isolate damaged segments and maintain a functional network. ΔΨm is a measure of the voltage across the inner mitochondrial membrane, created as electrons move through the respiratory chain and protons are pumped across it. A collapse in this potential signals impaired energy conversion and can promote further oxidative injury. By preserving ΔΨm and reducing mitoROS, SREBF2 appeared to interrupt a feedback loop in which mitochondrial failure fuels ferroptosis and ferroptosis, in turn, worsens mitochondrial damage.</p>
<p>The proposed repair mechanism is mitophagy, the selective form of autophagy that identifies and removes defective mitochondria. In the pathway examined by the researchers, damaged mitochondria accumulate the kinase PINK1 on their outer membrane. PINK1 then helps recruit and activate the ubiquitin ligase Parkin, which marks the impaired organelle for engulfment by autophagic membranes and delivery to lysosomes for degradation. This process is not simply cellular housekeeping. In highly active tissues such as the heart, effective mitophagy prevents dysfunctional mitochondria from remaining in the network and generating toxic oxidants. SREBF2 increased the activity of the PINK1/Parkin system and altered levels of mitophagy-related proteins, including p62, a cargo-adaptor protein that helps connect ubiquitinated material to the autophagic machinery. The findings suggest that the gene protects cardiomyocytes partly by improving the removal of damaged mitochondria before they become major sources of oxidative and iron-related injury.</p>
<p>The investigators next traced the signal upstream to Cav-1, the protein encoded by the <em>CAV1</em> gene. Cav-1 is a structural component of caveolae, small, flask-shaped invaginations in the plasma membrane that organize receptors, enzymes and signaling complexes. Although it has established roles in vascular biology and mechanosensation, the study identifies Cav-1 as a necessary link between SREBF2 and mitochondrial quality control in ischemic heart failure. Chromatin immunoprecipitation experiments indicated that SREBF2 directly binds regulatory DNA associated with <em>CAV1</em> and transcriptionally activates the gene. In other words, SREBF2 appears to function as a molecular switch: after increasing Cav-1 production, it promotes signaling that activates PINK1/Parkin-mediated mitophagy. This places a transcription factor traditionally connected with sterol regulation at the top of a pathway that reaches from the nucleus to the plasma membrane and finally to mitochondrial disposal.</p>
<p>The strongest evidence for this model came from the study’s rescue experiments. When Cav-1 was knocked down, the mitochondrial benefits associated with SREBF2 were lost. Mitophagy inhibition likewise abolished much of the protection against ferroptosis and cellular injury. These interventions reduced the improvement in mitochondrial membrane potential and restored the conditions associated with oxidative damage, including elevated reactive oxygen species and impaired antioxidant defenses. Such experiments are important because they test whether a molecular correlation is functionally required. If SREBF2 were acting through an unrelated antioxidant pathway, disabling Cav-1 or mitophagy should not have erased its effects. Instead, the results support a sequence in which reduced SREBF2 after infarction weakens Cav-1 transcription, suppresses PINK1/Parkin-dependent mitochondrial clearance and leaves cardiomyocytes vulnerable to ferroptosis. The pathway is likely more complex than a single linear chain, but the dependency experiments give the proposed axis—SREBF2, Cav-1, PINK1/Parkin and mitophagy—a mechanistic foundation.</p>
<p>The discovery also raises a therapeutic question: can SREBF2 be manipulated safely in the injured heart? Because SREBF2 is deeply involved in cholesterol synthesis and uptake, increasing its activity throughout the body could have unintended effects on lipid levels or vascular disease risk. The researchers’ results do not show that activating SREBF2 is safe in humans, nor do they establish whether the gene can be targeted selectively in cardiomyocytes after an infarction. The experiments used myocardial-infarction mice, oxygen-glucose-deprived cultured cardiomyocytes and human heart-failure samples, but the report does not describe a clinical trial or a drug capable of selectively turning on the pathway. Future work will need to determine how SREBF2 is downregulated after ischemic injury, whether Cav-1 can be targeted more directly, and how much mitophagy is beneficial before excessive mitochondrial turnover becomes harmful. It will also be important to test the mechanism in larger animals and across different causes and stages of heart failure. For now, the study offers a striking biological insight: a cholesterol-sensing transcription factor may help the heart survive by sending damaged mitochondria to the cellular recycling system, thereby preventing iron-fueled membrane destruction from turning injury into progressive cardiac failure.</p>
<div class="scienmag-article-metadata"><strong>Subject of Research:</strong> SREBF2-mediated mitophagy and ferroptosis protection in ischemic heart failure</p>
<p><strong>Article Title:</strong> SREBF2 promotes mitophagy and protects against ferroptosis via Cav-1-regulated PINK1/Parkin signaling in ischemic heart failure</p>
<p><strong>Article References:</strong> Li, J., Liu, J., Luo, F., Zhang, C., Hu, W., &amp; Liu, W. (2026). SREBF2 promotes mitophagy and protects against ferroptosis via Cav-1-regulated PINK1/Parkin signaling in ischemic heart failure. <em>Journal of Molecular Medicine, 104</em>(1), Article 103. <a href="https://doi.org/10.1007/s00109-026-02707-4" target="_blank" rel="noopener noreferrer">https://doi.org/10.1007/s00109-026-02707-4</a></p>
<p><strong>Image Credits:</strong> AI Generated</p>
<p><strong>DOI:</strong> <a href="https://doi.org/10.1007/s00109-026-02707-4" target="_blank" rel="noopener noreferrer">10.1007/s00109-026-02707-4</a></p>
<p><strong>Keywords:</strong> heart failure, myocardial infarction, SREBF2, ferroptosis, mitophagy, PINK1/Parkin signaling, caveolin-1, mitochondrial quality control</p>
</div>
]]></content:encoded>
					
		
		
		<post-id xmlns="com-wordpress:feed-additions:1">183668</post-id>	</item>
		<item>
		<title>Hydrogel Recycling Halts Ferroptosis by Chelating Iron</title>
		<link>https://scienmag.com/hydrogel-recycling-halts-ferroptosis-by-chelating-iron/</link>
		
		<dc:creator><![CDATA[Diana Fleming]]></dc:creator>
		<pubDate>Sat, 13 Jun 2026 17:00:21 +0000</pubDate>
				<category><![CDATA[Medicine]]></category>
		<category><![CDATA[biomaterials for iron homeostasis]]></category>
		<category><![CDATA[cancer ferroptosis therapy]]></category>
		<category><![CDATA[ferroptosis inhibition strategies]]></category>
		<category><![CDATA[hydrogel iron chelation]]></category>
		<category><![CDATA[iron metabolism regulation]]></category>
		<category><![CDATA[ischemic injury treatment]]></category>
		<category><![CDATA[lipid peroxide accumulation prevention]]></category>
		<category><![CDATA[molecularly imprinted hydrogels]]></category>
		<category><![CDATA[neurodegeneration cell death prevention]]></category>
		<category><![CDATA[oxidative cellular damage control]]></category>
		<category><![CDATA[polymerization techniques for hydrogels]]></category>
		<category><![CDATA[targeted iron chelators]]></category>
		<guid isPermaLink="false">https://scienmag.com/hydrogel-recycling-halts-ferroptosis-by-chelating-iron/</guid>

					<description><![CDATA[In a groundbreaking breakthrough that could revolutionize cellular health and disease prevention, researchers have unveiled an innovative approach to suppress ferroptosis—a recently discovered form of regulated cell death notorious for its involvement in neurodegeneration, cancer, and ischemic injury. This pioneering technique utilizes molecularly imprinted hydrogels to achieve closed-loop recycling of iron chelates, effectively controlling iron [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>In a groundbreaking breakthrough that could revolutionize cellular health and disease prevention, researchers have unveiled an innovative approach to suppress ferroptosis—a recently discovered form of regulated cell death notorious for its involvement in neurodegeneration, cancer, and ischemic injury. This pioneering technique utilizes molecularly imprinted hydrogels to achieve closed-loop recycling of iron chelates, effectively controlling iron metabolism and preventing the catastrophic cellular damage wrought by ferroptosis.</p>
<p>Ferroptosis, characterized by the iron-dependent accumulation of lipid peroxides, represents a unique and devastating pathway leading to cell death distinct from apoptosis or necrosis. Central to its mechanism is the dysregulation of iron homeostasis, which facilitates oxidative damage and triggers a cascade ending in the loss of cell viability. The challenge in therapeutic intervention lies in precisely modulating iron levels without disrupting its essential physiological roles. Traditional iron chelators offer some benefit but suffer from limitations such as poor targeting, systemic side effects, and inability to sustain long-term iron balance.</p>
<p>The team led by Yao, Ying, Zong, and colleagues at the forefront of biomaterials science have ingeniously designed molecularly imprinted hydrogels capable of selective iron chelate capture and release. These hydrogels are engineered through a template-assisted polymerization technique that creates highly specific binding sites tailored for iron-chelating molecules. By harnessing this molecular imprinting, the hydrogels demonstrate remarkable affinity and specificity, enabling them to harvest excess iron chelates from the cellular milieu and subsequently recycle them in a controlled manner.</p>
<p>At the nanoscale, the hydrogels exhibit a dynamic responsiveness to environmental cues such as pH and oxidative stress levels, facilitating the selective release of iron chelates precisely when intracellular iron concentrations threaten to breach homeostatic thresholds. This closed-loop system mimics nature’s own regulatory feedback mechanisms, maintaining iron balance and quenching the incipient oxidative damage before it escalates into irreversible ferroptosis. Unlike conventional therapies, this self-regulating setup minimizes off-target effects and permits sustained functionality over prolonged periods.</p>
<p>Delving deeper into the chemistry, the molecular imprinting process involves the polymerization of monomers around iron-chelate complexes serving as templates. Once polymerization solidifies into a hydrogel matrix, extraction of the templates leaves behind complementary cavities that preferentially rebind iron chelates with near-perfect geometric and chemical complementarity. These imprinted sites act as molecular traps or reservoirs, licensing the hydrogel to sequester and store iron chelates until triggered for release. This precision engineering represents a quantum leap forward in biomolecular recognition and controlled delivery systems.</p>
<p>Biologically, the suppression of ferroptosis achieved through this material innovation holds immense therapeutic promise. In cell culture models, treatment with these hydrogels markedly reduced lipid peroxidation markers and restored mitochondrial integrity, hallmarks of ferroptosis prevention. Furthermore, the hydrogels shielded neurons from oxidative insults that historically precipitate neurodegenerative cascades. This translates into potential clinical applications ranging from Parkinson’s disease and amyotrophic lateral sclerosis to cancer treatments, where ferroptosis modulation can influence tumor progression or resistance.</p>
<p>An equally fascinating facet of this approach is its sustainability and recyclability. The hydrogels not only chelate iron but facilitate a seamless recycling of chelates, reducing biochemical waste and enhancing therapeutic efficacy. This closed-loop paradigm aligns with green chemistry principles by minimizing the need for continuous administration of exogenous chelators, which can induce toxicity or iron deficiency anemia if overdosed. By regenerating their iron-binding capacity autonomously, these hydrogels support a more physiologically harmonious intervention.</p>
<p>The team subjected their hydrogels to rigorous in vivo testing, confirming biocompatibility and stability in physiological conditions without eliciting immune responses or adverse reactions. The polymers showed robust mechanical properties suitable for implantation or localized delivery, suggesting avenues for integration with medical devices or injectable therapies. Importantly, the material’s degradation rate can be fine-tuned to match the clinical need, ranging from acute interventions following ischemic injury to chronic neurodegenerative disease management.</p>
<p>Beyond immediate clinical implications, this work paves the way for a generalizable platform technology. The concept of molecular imprinting hydrogels engineered for closed-loop cycling of small bioactive molecules extends far beyond iron chelates. It opens a vista to targeted modulation of many critical metal ions and metabolites implicated in diverse diseases. This modularity could catalyze the development of next-generation biomimetic smart materials that actively participate in cellular regulation rather than passive drug delivery.</p>
<p>In the broader context of material science and medicine, this research exemplifies the synergy between bioengineering and molecular recognition chemistry. By leveraging the specificity of imprinting techniques and the tunability of hydrogel matrices, scientists are bridging the formidable gap between molecular precision and physiological complexity. Such technologies have the potential to transform how we understand and manipulate cellular death pathways, ultimately improving outcomes for some of the most challenging medical conditions.</p>
<p>Moreover, this closed-loop iron chelate recycling approach offers intriguing possibilities in the preventative medicine domain. Ferroptosis has been implicated not only in pathologies but also in the natural aging process, where iron accumulation and oxidative stress progressively compromise cell viability. Harnessing this hydrogel system could provide a prophylactic tool to delay senescence and maintain tissue health, offering a new dimension to longevity science.</p>
<p>As with all novel interventions, further research is necessary to elucidate long-term effects, optimal delivery methods, and integration with existing therapies. However, the initial data hold immense promise, energizing the scientific community and fostering hope for patients afflicted by ferroptosis-linked disorders. The fusion of advanced polymer chemistry and cellular biology marks a turning point in the crusade against iron-mediated oxidative damage.</p>
<p>In an era where chronic diseases dominate global health burdens, innovative materials that restore intracellular balance are urgently needed. This molecularly imprinted hydrogel system exemplifies an elegant solution that not only intervenes at the molecular level but also institutes a regenerative, self-sustaining therapeutic cycle. It highlights how biomaterials can evolve from passive substrates to active participants in cellular health management.</p>
<p>The publication of this study in Nature Communications heralds a new chapter in ferroptosis research and therapeutic materials science. It challenges researchers and clinicians alike to rethink iron homeostasis, not as a static target but as a dynamic process amenable to smart material modulation. The convergence of chemistry, biology, and materials engineering encapsulated in this work sets a high bar and a hopeful trajectory for future innovations.</p>
<p>As the scientific community continues to unravel the complexities of ferroptosis, the development of tools like these molecularly imprinted hydrogels will be essential. Their ability to fine-tune iron metabolism in real-time embodies a paradigm shift from symptom management to fundamental cellular regulation. This advancement is poised to ripple across disciplines, inspiring interdisciplinary collaborations and fueling the next generation of therapies.</p>
<p>Ultimately, this research stands as a testament to human ingenuity in decoding and manipulating life’s biochemical machinery. With closed-loop iron chelate recycling through molecularly imprinted hydrogels, we are stepping closer to controlling one of the most insidious forms of cell death, potentially transforming health outcomes worldwide.</p>
<hr />
<p><strong>Subject of Research</strong>: Suppression of ferroptosis using molecularly imprinted hydrogels for closed-loop iron chelate recycling.</p>
<p><strong>Article Title</strong>: Closed-loop iron chelate recycling via molecularly imprinted hydrogels suppresses ferroptosis.</p>
<p><strong>Article References</strong>:<br />
Yao, Y., Ying, T., Zong, C. <em>et al.</em> Closed-loop iron chelate recycling via molecularly imprinted hydrogels suppresses ferroptosis. <em>Nat Commun</em> (2026). <a href="https://doi.org/10.1038/s41467-026-74330-3">https://doi.org/10.1038/s41467-026-74330-3</a></p>
<p><strong>Image Credits</strong>: AI Generated</p>
]]></content:encoded>
					
		
		
		<post-id xmlns="com-wordpress:feed-additions:1">165945</post-id>	</item>
	</channel>
</rss>
