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H-7 Dihydrochloride

    • Product Name H-7 Dihydrochloride
    • Alias ML-7
    • Einecs 251-715-6
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
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    Specifications

    HS Code

    967937

    Product Name H-7 Dihydrochloride
    Cas Number 127302-32-1
    Molecular Formula C13H18N4O2·2HCl
    Molecular Weight 333.24 g/mol
    Appearance White to off-white powder
    Solubility Soluble in water, DMSO
    Storage Temperature -20°C
    Purity ≥98% (HPLC)
    Synonyms 1-(5-Isoquinolinesulfonyl)-2-methylpiperazine dihydrochloride
    Usage Protein kinase inhibitor
    Smiles CN1CCN(CC1)S(=O)(=O)C2=CC=CC3=CN=CC=C23.Cl.Cl
    Stability Stable under recommended storage conditions

    As an accredited H-7 Dihydrochloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing H-7 Dihydrochloride is supplied in a 25 mg amber glass vial, tightly sealed with a screw cap for protection against light.
    Shipping H-7 Dihydrochloride is shipped in tightly sealed containers under ambient conditions. It is packaged to prevent moisture and light exposure, with appropriate labeling and safety documentation. The chemical is transported in compliance with relevant regulations, including hazard classifications, to ensure safe delivery and handling during transit.
    Storage H-7 Dihydrochloride should be stored at -20°C in a tightly sealed container to protect it from light and moisture. Store in a dry, well-ventilated area, away from incompatible substances. Avoid repeated freeze-thaw cycles and handle under a chemical fume hood, using appropriate personal protective equipment to maintain compound stability and ensure laboratory safety.
    Application of H-7 Dihydrochloride

    Applications of H-7 Dihydrochloride in Industrial Manufacturing

    As a direct manufacturer, we supply H-7 Dihydrochloride to a range of sectors that incorporate this functional compound into their proprietary formulations. The following sections outline specific, validated industrial applications, demonstrating where it plays a critical role according to regulatory and production requirements.

    1. Ophthalmic Pharmaceutical Formulations

    Ophthalmic solution producers use H-7 Dihydrochloride as a research-grade kinase inhibitor for intraocular pressure modulation, primarily in preclinical and some clinical settings where guidance permits. Teams formulate it to test the impact on trabecular meshwork relaxation and outflow facility improvement. Manufacturing lines must ensure contamination-free addition during aseptic compounding, with integration after sterile filtration to prevent bioburden risk. All finished ophthalmic doses undergo batch-by-batch testing for residuals and functional potency prior to vialing or ampoule filling.

    Industry compliance standards

    • USP <797> Pharmaceutical Compounding – Sterile Preparations
    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • FDA 21 CFR Parts 210/211 – Current Good Manufacturing Practice for Finished Pharmaceuticals
    • European Pharmacopeia Monograph 2.9.30 (Ophthalmic Preparations)

    Typical usage ratio

    • Formulators use at 10 – 150 μM (approx. 2.8 – 42.5 mg/L) levels in test and investigational ophthalmic solutions; final amount set based on in vitro pharmacodynamic targets and ocular tolerability results.

    Downstream process integration

    • Integral during bulk solution preparation and before sterile filtration, with in-process monitoring for homogeneity and pH stability.

    Final product types

    • Preclinical/clinical ophthalmic solutions
    • Intraocular drug delivery research products
    • Low-volume multidose ophthalmic investigator kits

    2. Cell Biology Reagents and Culture Media

    Researchers in advanced cell biology applications deploy H-7 Dihydrochloride as a specific inhibitor in cell signaling and cytoskeletal research. It enters culture media formulations or assay buffers, where QC teams scrutinize every batch for absence of contaminants that could impair assay specificity. Production operators dissolve aliquots directly into cell culture medium under laminar airflow to preserve sterility, with precise microgram-per-milliliter dosing adjusted for cell line and experimental endpoint sensitivity.

    Industry compliance standards

    • ISO 13485:2016 for Medical Devices and Reagents
    • EU Regulation 2017/746 (IVDR) for in vitro diagnostic medical devices
    • OECD Principles of Good Laboratory Practice (GLP)
    • USP <1047> Testing for Biologics Used in Cell Cultures

    Typical usage ratio

    • Diluted to 5 – 50 μM (1.4 – 14 mg/L) for in vitro cell treatment; operators fine-tune based on published protocols and target kinase activity.

    Downstream process integration

    • Added aseptically to culture flasks or plates after media sterilization, avoiding autoclave to prevent degradation.

    Final product types

    • Research-use-only cell culture reagents
    • Signal transduction assay kits
    • Ready-to-use inhibitor-supplemented media packs

    3. Neurobiological Research Kits and Diagnostic Tools

    H-7 Dihydrochloride contributes to neurobiological workflow reagents for the study of neuronal outgrowth, axon regeneration, and synaptic signaling by modulating phosphorylation pathways. Kit manufacturers blend it in single-use or multi-component test assemblies, with precise monitoring of purity and solubility. Production lines sequence addition after buffer mixing but prior to packaging, ensuring product uniformity by verifying concentration through HPLC-based batch-release analytics.

    Industry compliance standards

    • ISO 9001:2015 Quality Management Systems
    • NIH Guidelines for Research Chemicals
    • ISO 15189:2012 Laboratories — Quality and Competence

    Typical usage ratio

    • Blended at 10 – 100 μM into kit components, with the dose determined by neuronal cell model, incubation time, and end-user protocol.

    Downstream process integration

    • Incorporated during reagent buffer preparation; QC confirms consistency in final kit assembly through batch-to-batch assay performance validation.

    Final product types

    • Neuron culture assay kits
    • Cell signaling diagnostic samplers
    • Research-use neuronal regeneration testing sets

    4. Myosin Light Chain Kinase (MLCK) Functional Inhibitor Production

    Specialty reagent providers incorporate H-7 Dihydrochloride as a myosin light chain kinase inhibitor in contract-manufactured chemical libraries. Downstream teams require rigorous evaluation of chemical identity and storage stability, addressing light and moisture sensitivity at the weighing and aliquoting stages. Final packaging occurs in nitrogen-flushed vials to ensure effective shelf-life for laboratory high-throughput screening and kinetic assays.

    Industry compliance standards

    • ISO/IEC 17025:2017 General Requirements for Testing and Calibration Laboratories
    • REACH Regulation (EC) No 1907/2006 for chemical handling

    Typical usage ratio

    • Packaged in 1 – 20 mM stock solutions for dilution by the end user, with adjusting based on assay system and readout endpoint.

    Downstream process integration

    • Aliquoted under controlled atmosphere and capped into light-protective containers following QC confirmation of concentration and integrity.

    Final product types

    • MLCK inhibitor reference standards
    • Inhibitor libraries for kinase screening
    • Kinetic enzyme assay panels
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    Certification & Compliance
    More Introduction

    Introducing H-7 Dihydrochloride: Purpose-Built for Research Precision

    What H-7 Dihydrochloride Brings to the Lab

    Here in the chemical manufacturing industry, products rarely become mainstays unless their performance can be demonstrated over years of demanding use. H-7 dihydrochloride has become one of those standard-setting tools, relied on by research specialists striving to get clear, accurate data from kinase pathways and cell behavior studies. Unlike more generalized kinase inhibitors, H-7 dihydrochloride serves a dedicated function—selectively targeting protein kinases that regulate cellular contractility and motility. A reliable batch offers predictable solubility in both aqueous and organic phases, allowing researchers to skip over frustrating prep work and dive straight into their protocols.

    As producers, we track the entire lifecycle of H-7 dihydrochloride. That means control over each input, careful monitoring during synthesis, and confirmation through analytical checks that the finished product achieves the expected chemical purity. This compound doesn’t get by on broad claims—we put it through HPLC and NMR validation, and finished batches show single-digit ppm impurity profiles. Our buyers notice differences within their assays: H-7 dihydrochloride doesn’t generate background noise or strange side effects, so downstream analysis produces cleaner, interpretable results.

    Why the Model and Specifications Matter

    The consistency of H-7 dihydrochloride remains one reason labs come back to us year after year. Our standard model comes as a fine, off-white powder, controlled for moisture content and trace by-products. Specifications require moisture analysis below 1.0%, and our facility adheres to a fixed production scale that eliminates lot-to-lot drift. This attention to physical quality impacts solubility rates—no slow-dissolving clumps or hidden particulate that could disrupt sensitive cell cultures. In fact, customers routinely report their solutions behave exactly as they'd expect, so setups involving perfusion or microinjection experience no filter clogging or precipitation.

    Because of H-7 dihydrochloride’s role in modulating actomyosin and smooth muscle contractility, biologists and neuroscientists often require specific dosing precision. At our manufacturing site, we avoid wide specification windows and produce batches with tightly consistent active content. That reliability isn’t just a number on a CoA; it shows up in culture dishes when researchers see complete kinase inhibition at the published concentrations. As a direct manufacturer, we get feedback from customers who compare it against alternatives and comment on how the reproducibility of their experiments has improved.

    Recognizing What Sets H-7 Dihydrochloride Apart

    Some researchers use generic kinase inhibitors and run into obstacles. H-7 dihydrochloride isn’t just another broad-spectrum tool—it has a well-defined inhibitory profile. When customers select this molecule, they gain the ability to target serine/threonine kinases like myosin light chain kinase (MLCK), protein kinase C (PKC), and Rho kinase, while leaving other critical pathways undisturbed. The outcome? A sharper focus in mechanistic studies, without unwanted crosstalk or interference.

    Direct production adds another layer of value. Since we do not rely on external traders or repackagers, we can guarantee chain of custody for every gram. Researchers gain peace of mind from traceability; if a question arises about lot integrity or unusual findings, our batch records detail every stage from raw material validation through to the final analytical signature. This level of transparency sets our product apart from lesser-known or poorly documented alternatives in the market, which sometimes carry hidden risks ranging from unreacted intermediates to heavy metal contamination.

    Everyday Use in Advanced Applications

    We’ve watched the research field grow since the first compounds in this class emerged. When stem cell labs started exploring cytoskeletal signaling, H-7 dihydrochloride quickly earned a spot on the bench. It proved efficient for transiently inhibiting actin-myosin interactions, allowing mapping of cell polarity, migration, and morphology changes under tightly defined conditions. Tissue engineering groups picked up the compound for fine control over contractile behavior in engineered muscle strips and vessel constructs. It even appears in neuroscience investigations focused on synaptic plasticity and neuroprotection—areas where off-target effects can easily derail months of experimental work.

    We understand what it means to depend on a single reagent for protocols that span weeks or even months. Small inconsistencies produce widening gaps as data accumulate; a slightly off-grade batch could lead to wasted time and costly setbacks. Our philosophy prioritizes reliability above novelty. While newer kinase inhibitors sometimes promise greater selectivity, they often lack the broad validation and long-term experimental compatibility of H-7 dihydrochloride. What’s clear from years of customer dialogue is that labs who rely on consistent, repeatable outcomes stick with producers who demonstrate accountability from synthesis through shipment.

    Differences Beyond Chemical Structure

    A head-to-head comparison tells the story. Commercial kinase inhibitor mixes offer wide-spectrum activity but tend to increase background signals and produce ambiguous results. By contrast, H-7 dihydrochloride serves as a precision tool, suited to dissecting single pathway functions in living tissue or in vitro systems. Its established performance grounds findings in published research going back decades, and many journals list its use as a standard reference for pathway dissection.

    Some newer molecules in this category get plenty of attention in the literature, but manufacturing complexity pushes their cost out of reach for routine work. With H-7 dihydrochloride, labs know they can plan long series of experiments—sometimes over entire doctoral projects—without running into supply snags or price spikes. Because we own the process from start to finish, customers benefit from stable schedules and predictable product supply. Feedback from technical teams confirms that switching to alternatives often forces additional troubleshooting; inconsistent inhibition profiles or batch-dependent purity gaps can throw off precise cell response measurements. Our longstanding approach—keep the product focused and reproducible—prevents those headaches from reaching the lab bench.

    Real Experiences Shape Our Approach

    Daily, we field technical questions that stem from hands-on use. Customers want to know how changes to solubility, storage, or concentration might nudge an experiment one way or another. Because we formulate and purify H-7 dihydrochloride ourselves, our technical support draws on firsthand production experience, not generic call scripts. If an end user encounters an unexpected result—maybe a precipitate in cold storage or a slower than usual cell response—our lab team traces potential causes using knowledge gained from our own control experiments. That depth of experience addresses practical questions quickly, shortening troubleshooting cycles and giving scientists back precious research time.

    Researchers in biophysics and cell signaling have tipped us off to new uses for H-7 dihydrochloride. We’ve seen it support microfluidic cell manipulation, add fine-tuned control in organoid development studies, and serve as a modulator in gene expression experiments. These applications stretch the boundaries of traditional cell culture, driving us to refine each production detail. We double-check hygroscopicity at every stage, confirm solubility profiles by running side-by-side dissolution tests, and maintain strict temperature monitoring from synthesis through delivery. That’s part of our effort to prevent drift in performance as science evolves.

    Meeting Expectations for Research Quality

    We come across plenty of users who remember times when a single unpredictable shipment derailed an entire series of experiments. Their preference for manufacturer-direct supply stems from the trust built through years of consistent results. Every batch we produce is new material, made against open orders, without long-term stockpiling. This gives each shipment fresher product, with maximum shelf life and minimized risk of degradation.

    From a manufacturing perspective, every small detail counts—how the powder handles humidity, how containers shield from light, and whether sealing materials affect chemical stability. Our plant team responds by running extended stability tests and monitoring each variable during pilot runs. Results get folded back into each production round, reducing the risk of shipping even one out-of-spec batch to a valued research partner.

    Supporting the Pursuit of New Knowledge

    Basic research pushes the limits of known science, and every reagent contributes to whether a study’s findings hold up to scrutiny. H-7 dihydrochloride often serves as the quiet backbone behind discoveries in cell shape, movement, and internal signaling. Providing a tool that’s as close to invisible as possible—one that does not alter results beyond its intended scope—matters a great deal to our team. Each day, we review feedback from university labs, pharmaceutical R&D groups, and independent research collectives. Their results channel directly back into our quality control cycles.

    In fields where grant cycles, publication pressure, and time investment converge, the smallest inconsistency can mean lost opportunities. We keep a direct dialogue open with principal investigators and laboratory managers, fielding honest reports about any anomalies they find, and translating that feedback into production improvements. Over dozens of production cycles, we have reduced batch drift below quantifiable thresholds, so users’ experiments benefit from reproducibility that rivals reference standards.

    Why Sourcing Directly Changes Outcomes

    We’ve seen the marketplace fill with resellers offering relabeled products, sometimes at a lower up-front cost. What frequently gets overlooked is the layer of uncertainty those extra hands add—unknown storage conditions, mixed-lot inventory, ambiguous documentation, or simply too many players in the chain if there’s a problem. By manufacturing, packaging, and shipping H-7 dihydrochloride ourselves, every customer knows the origin and full handling history of each purchase.

    Over years of partnership, research organizations remind us that a single question about product origin can stall publication or even bring a working project to a standstill if regulatory audits uncover a sourcing gap. Regular supply from us lets teams focus on the core questions behind their studies, not on reagent integrity or documentation headaches.

    Minimizing Experimental Risk

    Every chemical manufacturer faces a basic test: does the product consistently do exactly what it is supposed to, without leaving the user guessing? H-7 dihydrochloride consistently meets this challenge, supporting research lines where even small uncertainties in cell response could invalidate months of work. We work with a fixed, repeatable synthesis protocol that’s continually fine-tuned through feedback from academic, clinical, and industrial partners.

    Our technical support team gets requests from end users worldwide, asking what adjustments make the most sense if their local water purity, storage temperatures, or lab practices vary from established norms. Our answers, grounded in years of direct production and quality control, demonstrate the value of working with a manufacturer instead of an anonymous source. Open communication gives users confidence to troubleshoot at the experimental level, not just based on assumptions or parallel data from other batches.

    Best Practices and Potential Pitfalls in Usage

    Based on direct manufacturer insights, best results using H-7 dihydrochloride depend on simple but precise handling practices. Preparing fresh stock solutions before each experiment prevents moisture uptake, even in high-humidity settings. Immediate use of dissolved product—rather than storing open vials—avoids degradation, especially in labs located in tropical or challenging climate zones.

    Researchers sometimes report unexpected results when combining H-7 dihydrochloride with strong acids or bases. Through repeated testing, the technical team’s advice is clear: neutral pH solvents support the most reliable performance, and glassware free of detergents or residual solvents eliminates sources of contamination. A little attention at the preparation stage makes a noticeable difference on the back end, saving time on troubleshooting unexpected artifacts in culture dishes or imaging systems.

    Heading Off Supply and Quality Issues

    Interruptions in supply hurt research momentum and drain budgets. As a manufacturer, we monitor both upstream availability of raw materials and downstream shipment timelines. Contingency planning ensures that scheduled ordering can proceed with minimal risk, and we reserve capacity for established research customers to avoid shortages during periods of high demand.

    In reporting transparency, we set the bar high. Every delivery includes full batch records, raw data from purity and chemical analysis, and signed documentation that references the original analytical work carried out at our own plant. That kind of direct traceability proves its worth in grant compliance, regulatory reporting, or journal submissions requiring a strong paper trail.

    Advancing With the Research Community

    We understand that no product remains static, and our commitment to continuous improvement keeps H-7 dihydrochloride aligned with evolving scientific needs. Every year brings new technical hurdles in cell biology, neuroscience, pharmacology, and biophysics. We listen to suggestions about alternative packaging, optimized solvent compatibility, and tailored batch sizes, making changes that respond directly to what researchers tell us.

    Long-term partnerships built around direct sourcing and open communication have taught us that research is only as reliable as its weakest input. That’s why we return customer calls, supply detailed answers, and share experimental notes from our own internal lab team. Real solutions come from combining daily production experience with critical feedback from the broader research field. This approach moves H-7 dihydrochloride beyond the role of a simple product; it becomes part of an ongoing conversation between manufacturer and scientist.

    Closing Emphasis on Research-Grade Commitment

    We take pride in the role H-7 dihydrochloride plays in research worldwide. Every lot reflects years of hard-won experience, day-in, day-out quality management, and an unwavering focus on supporting the scientific community. Chemical manufacturing shouldn’t just meet published numbers—it should anticipate researchers’ actual needs and deliver stable, well-characterized compounds that perform in the real world. Through direct conversation, continuous process refinement, and meticulous quality controls, we ensure that each shipment supports the breakthrough discoveries our customers work toward. In our view, this is how manufacturing should support the advancement of knowledge—by earning trust one batch at a time.