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| Hydrogen sulfide (H₂S), a gaseous signaling molecule, has been implicated in Alzheimer’s disease (AD) pathology with both neuroprotective and neurotoxic roles, depending on concentration, source, and context. - It was found that the endogenous H2S level in the brain of AD patients was significantly lower than that of normal people. -A cysteine-rich diet or supplementation with an appropriate amount of N-acetylcysteine is beneficial to the synthesis of H2S in the brain -Activates Nrf2, upregulates antioxidant genes Reduces oxidative stress, neuroprotective. -Inhibits NF-κB activation Suppresses inflammatory cytokines like TNF-α, IL-1β -Reduces Aβ aggregation and toxicity -Enhances cerebral blood flow **Accumulating evidence indicates that H2S exhibits bimodal modulation of cancer development. Thus, endogenous or low levels of exogenous H2S are thought to promote cancer, whereas high doses of exogenous H2S suppress tumor proliferation.** Hydrogen sulfide (H₂S) — a small, membrane-permeable gaseous signaling molecule and endogenous gasotransmitter produced principally through cystathionine β-synthase (CBS), cystathionine γ-lyase (CSE/CTH), and 3-mercaptopyruvate sulfurtransferase (3-MST/MPST). It functions as a redox and metabolic signaling mediator, notably through protein persulfidation, modulation of mitochondrial electron transport, vascular signaling, and stress-response pathways. H₂S has a strongly biphasic biological profile: low physiologic concentrations can promote mitochondrial bioenergetics, cytoprotection, proliferation, and angiogenesis, whereas sufficiently high concentrations inhibit mitochondrial Complex IV and can cause energetic collapse and cell death. In cancer this creates an important therapeutic paradox because many tumors exploit increased endogenous H₂S production, while high-output or tumor-targeted H₂S donors are being investigated experimentally as anticancer agents. Primary mechanisms (ranked):
Bioavailability / PK relevance: Free H₂S is highly diffusible but extremely short-lived in biological systems because it is rapidly oxidized, scavenged, bound, or incorporated into reactive sulfur species. Experimental studies therefore commonly use NaHS, Na₂S, GYY4137, AP39, SG1002, or other H₂S-releasing compounds rather than administering gaseous H₂S systemically. Release rate, intracellular localization, oxygen tension, sulfide oxidation capacity, and tissue targeting can substantially change biological effects. In-vitro vs systemic exposure relevance: Concentration is critical. Bolus sulfide salts can transiently produce H₂S concentrations considerably higher than sustained physiologic exposure and therefore may cause mitochondrial inhibition that does not represent endogenous H₂S signaling. Results obtained with high-concentration NaHS or Na₂S should not be interpreted as equivalent to physiologic endogenous H₂S or slow-release donors. Tumor-targeted and mitochondria-targeted donors are intended to overcome this exposure problem. Clinical evidence status: Preclinical for cancer therapy. Tumor H₂S metabolism is well supported mechanistically in experimental cancer models, but H₂S administration is not an established cancer treatment. H₂S donors and H₂S-generating systems remain investigational. SG1002 has undergone small Phase I human studies primarily in cardiovascular disease, not cancer. No H₂S donor has established clinical efficacy for cancer, and inhaled/free H₂S is a toxic respiratory and mitochondrial poison at sufficiently high exposure. Hydrogen Sulfide Cancer-Relevant Mechanisms
TSF: P: 0–30 min R: 30 min–3 hr G: >3 hr Hydrogen sulfide and Alzheimer’s disease: H₂S is an endogenous neuromodulatory gasotransmitter with substantial preclinical evidence for neuroprotective effects relevant to Alzheimer’s disease. Experimental H₂S replacement or donor treatment can suppress tau hyperphosphorylation, reduce amyloidogenic processing, decrease oxidative and inflammatory injury, and improve cognition in animal models. A particularly well-supported mechanism is persulfidation of GSK3β, which decreases its kinase activity and reduces pathological tau phosphorylation. H₂S biology is nevertheless concentration-dependent, and excessive H₂S can inhibit mitochondrial Complex IV and become neurotoxic. Clinical evidence status: Preclinical. Cell and transgenic-animal studies support disease-modifying mechanisms, but there is no established H₂S donor therapy for Alzheimer’s disease and no evidence from therapeutic RCTs demonstrating clinical efficacy. Human studies have primarily examined H₂S as a biomarker rather than treatment. Hydrogen Sulfide Alzheimer-Relevant Mechanisms
TSF: P: 0–30 min R: 30 min–3 hr G: >3 hr |
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| (Also known as Hsp32 and HMOX1) HO-1 is the common abbreviation for the protein (heme oxygenase‑1) produced by the HMOX1 gene. HO-1 is an enzyme that plays a crucial role in various cellular processes, including the breakdown of heme, a toxic molecule. Research has shown that HO-1 is involved in the development and progression of cancer. -widely regarded as having antioxidant and cytoprotective effects -The overall activity of HO‑1 helps to reduce the pro‐oxidant load (by degrading free heme, a pro‑oxidant) and to generate molecules (like bilirubin) that can protect cells from oxidative damage Studies have found that HO-1 is overexpressed in various types of cancer, including lung, breast, colon, and prostate cancer. The overexpression of HO-1 in cancer cells can contribute to their survival and proliferation by: Reducing oxidative stress and inflammation Promoting angiogenesis (the formation of new blood vessels) Inhibiting apoptosis (programmed cell death) Enhancing cell migration and invasion When HO-1 is at a normal level, it mainly exerts an antioxidant effect, and when it is excessively elevated, it causes an accumulation of iron ions. A proper cellular level of HMOX1 plays an antioxidative function to protect cells from ROS toxicity. However, its overexpression has pro-oxidant effects to induce ferroptosis of cells, which is dependent on intracellular iron accumulation and increased ROS content upon excessive activation of HMOX1. -Curcumin Activates the Nrf2 pathway leading to HO‑1 induction; known for its anti‑inflammatory and antioxidant effects. -Resveratrol Induces HO‑1 via activation of SIRT1/Nrf2 signaling; exhibits antioxidant and cardioprotective properties. -Quercetin Activates Nrf2 and related antioxidant pathways; contributes to anti‑oxidative and anti‑inflammatory responses. -EGCG Promotes HO‑1 expression through activation of the Nrf2/ARE pathway; also exhibits anti‑inflammatory and anticancer properties. -Sulforaphane One of the most potent natural HO‑1 inducers; triggers Nrf2 nuclear translocation and upregulates a battery of phase II detoxifying enzymes. -Luteolin Induces HO‑1 via Nrf2 activation; may also exert anti‑inflammatory and neuroprotective effects in various cell models. -Apigenin Has been reported to induce HO‑1 expression partly via the MAPK and Nrf2 pathways; also known for anti‑inflammatory and anticancer activities. |
| 7500- | H2S, | Hydrogen sulfide ameliorates learning memory impairment in APP/PS1 transgenic mice: A novel mechanism mediated by the activation of Nrf2 |
| - | in-vivo, | AD, | NA |
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