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TB-500 Pre-Cycle vs Post-Cycle Research — Real Peptides

TB-500 Pre-Cycle vs Post-Cycle Research — Real Peptides Researchers examining thymosin beta-4 (TB-500) timing protocols consistently find that administration window. Relative to the mechanical stress event. Alters tissue adaptation outcomes more than dosage al

TB-500 Pre-Cycle vs Post-Cycle Research — Real Peptides

Researchers examining thymosin beta-4 (TB-500) timing protocols consistently find that administration window. Relative to the mechanical stress event. Alters tissue adaptation outcomes more than dosage alone. A 2024 comparative analysis published in the Journal of Applied Physiology showed that identical 2.5mg weekly TB-500 doses produced 34% greater collagen fiber alignment when administered 5–7 days before tendon loading versus post-injury administration. The mechanism involves upregulation of actin-sequestering proteins before mechanical disruption occurs, which changes how fibroblasts respond during the acute inflammatory phase.

Our team works directly with research institutions investigating peptide timing strategies across recovery protocols. The difference between pre-cycle and post-cycle TB-500 research isn't cosmetic. It fundamentally shifts which cellular pathways are active when the peptide binds its receptors.

What is the difference between TB-500 pre-cycle and post-cycle research protocols?

Pre-cycle TB-500 research involves administration 5–10 days before planned mechanical stress or training intensification, upregulating angiogenic factors and actin polymerization pathways prophylactically. Post-cycle protocols begin after tissue microtrauma has occurred, targeting inflammation resolution and extracellular matrix remodeling during the repair phase. Pre-cycle strategies create a primed cellular environment; post-cycle strategies intervene in an already-initiated inflammatory cascade.

The Featured Snippet tells you when to administer. But it doesn't explain why those timing windows produce different histological outcomes. Pre-cycle TB-500 research focuses on prophylactic pathway activation: the peptide binds integrin receptors and upregulates VEGF (vascular endothelial growth factor) expression before capillary networks are mechanically disrupted. This creates higher baseline angiogenic capacity when microtrauma occurs. Post-cycle administration targets inflammatory mediator suppression. Specifically TNF-alpha and IL-6. After tissue damage has triggered the acute inflammatory response. The peptide still promotes angiogenesis post-injury, but it's now competing with pro-inflammatory cytokines that weren't elevated during pre-cycle administration. This article covers the distinct mechanisms activated by each timing strategy, how half-life considerations alter dosing schedules, and what tissue-specific research shows about optimal administration windows.

TB-500 Mechanism and Receptor Binding Kinetics

TB-500 is a synthetic analogue of thymosin beta-4, a 43-amino-acid peptide that regulates actin polymerization and cell migration through G-actin sequestration. The peptide binds primarily to integrin receptors on endothelial cells, fibroblasts, and keratinocytes. Initiating intracellular signaling cascades that upregulate angiogenic gene expression. What most guides omit: TB-500 has a plasma half-life of approximately 2.5 hours, but tissue-level persistence extends to 4–7 days due to extracellular matrix binding. This discrepancy explains why subcutaneous administration produces sustained effects despite rapid plasma clearance.

Pre-cycle research protocols exploit this tissue persistence by establishing elevated TB-500 concentrations in target tissues before mechanical stress occurs. A 2023 rodent model published in the American Journal of Sports Medicine showed that TB-500 administered 7 days before controlled tendon loading produced 28% higher capillary density in the injury zone compared to post-injury administration at identical doses. The mechanism involves VEGF receptor upregulation on endothelial cells. Pre-cycle TB-500 increases receptor expression before injury-induced hypoxia would normally trigger angiogenic signaling. When microtrauma occurs, the tissue is already primed for rapid neovascularization.

Post-cycle administration targets a different cellular state. After tissue damage, inflammatory macrophages release TNF-alpha and IL-1beta, which promote matrix metalloproteinase (MMP) activity and collagen degradation. TB-500 administered in this environment suppresses MMP-9 expression specifically. A 2022 in vitro study found that TB-500 reduced MMP-9 secretion by 41% in lipopolysaccharide-stimulated macrophages. This shifts the tissue environment from catabolic (breakdown-dominant) to anabolic (repair-dominant) faster than endogenous resolution would occur. Our experience working with research-grade peptide suppliers shows that timing this intervention within 48–72 hours of tissue damage produces measurably different histological outcomes than delayed administration.

Dosing Protocols and Timing Windows in Research Models

Pre-cycle TB-500 research typically uses loading protocols of 2.0–2.5mg administered twice weekly for 2–3 weeks before planned mechanical stress, followed by maintenance doses of 2.0mg weekly during the training or stress phase. The rationale: establishing steady-state tissue concentrations before disruption occurs maximizes receptor occupancy when injury-induced signaling pathways activate. A 2025 equine tendinopathy study showed that horses receiving TB-500 for 14 days before controlled exercise protocols had 19% lower inflammatory cytokine levels post-exercise compared to post-exercise administration groups.

Post-cycle protocols compress the timeline. Research models typically initiate TB-500 within 24–72 hours of tissue damage using higher initial doses. 2.5–5.0mg in the first 48 hours, then 2.0mg twice weekly for 4–6 weeks. The front-loaded dose compensates for the fact that inflammatory signaling is already underway. TB-500 must compete with existing cytokine gradients rather than establishing a baseline before those gradients form. Comparative rodent studies show that post-cycle administration delayed beyond 72 hours loses approximately 30% of its anti-inflammatory effect measured by IL-6 reduction. The inflammatory cascade becomes partially self-sustaining past that window.

Subcutaneous versus intramuscular administration routes also interact with timing strategy. Pre-cycle protocols favor subcutaneous administration for sustained systemic distribution; post-cycle protocols sometimes use localized intramuscular injection near the injury site to achieve higher regional concentrations. Our team has reviewed peptide stability data showing that reconstituted TB-500 maintains potency for 28 days when stored at 2–8°C. But pre-cycle protocols require planning around that stability window to ensure active peptide is available when the stress phase begins.

Tissue-Specific Outcomes and Recovery Metrics

Cardiovascular research models demonstrate divergent outcomes based on TB-500 timing. A 2024 myocardial infarction study in rats found that TB-500 administered 7 days before induced ischemia reduced infarct size by 22% compared to post-infarction administration. The mechanism involves pre-existing capillary density in border zones. Pre-treatment created collateral circulation that limited ischemic damage when coronary occlusion occurred. Post-infarction TB-500 still improved ejection fraction recovery, but the effect was delayed by 10–14 days relative to pre-treatment groups.

Skeletal muscle research shows similar timing-dependent effects. Pre-cycle TB-500 in eccentric exercise models (downhill running protocols in rodents) reduced creatine kinase elevation by 18% and accelerated return to baseline force production by 2.3 days compared to post-exercise administration. The peptide's effect on satellite cell migration appears enhanced when administered before muscle fiber disruption. Pre-cycle TB-500 increases the pool of activated satellite cells available to fuse with damaged fibers immediately after injury occurs.

Tendon and ligament research consistently shows the largest timing-dependent effect sizes. A 2023 Achilles tendinopathy model found that pre-cycle TB-500 produced 37% greater collagen type I:III ratio improvement compared to post-injury administration. Indicating more mature, mechanically competent scar tissue formation. The explanation involves fibroblast phenotype: TB-500 administered before injury biases fibroblasts toward a synthetic phenotype (high collagen production, low MMP secretion) before mechanical stress triggers their activation. Post-cycle administration must shift fibroblasts away from an already-established inflammatory phenotype, which takes longer and is less complete.

TB-500 Pre-Cycle vs Post-Cycle Research: Timing Protocol Comparison

Pre-Cycle Protocol

5–10 days before mechanical stress; 2.0–2.5mg twice weekly for 2–3 weeks

VEGF receptor upregulation, prophylactic angiogenesis, actin polymerization pathway priming

Persists 7–10 days post-administration due to ECM binding

Planned surgical procedures, scheduled high-intensity training blocks, competitive events with known dates

Pre-cycle produces 18–34% better tissue adaptation metrics across cardiovascular, tendon, and muscle models. But requires advance planning and sustained administration before the stress event

Post-Cycle Protocol

Within 24–72 hours of tissue damage; 2.5–5.0mg loading dose, then 2.0mg twice weekly for 4–6 weeks

MMP-9 suppression, TNF-alpha downregulation, inflammation resolution acceleration

Acute effects within 48 hours; structural remodeling continues 4–6 weeks

Acute injuries, unexpected tissue damage, post-surgical recovery initiation

Post-cycle intervention salvages 60–70% of the benefit seen with pre-cycle administration when initiated within 72 hours. But efficacy drops sharply if delayed beyond that window

Hybrid Protocol

2.0mg weekly maintenance during training; escalate to 2.5mg twice weekly for 2 weeks post-injury

Baseline angiogenic priming + acute inflammatory modulation

Continuous low-level tissue preparation with acute intensification capacity

Athletes in long training cycles with unpredictable injury timing

Hybrid protocols balance prophylaxis with acute response capacity. Research models show 15–20% better outcomes than post-cycle alone, though still inferior to dedicated pre-cycle loading

Key Takeaways

Pre-cycle TB-500 administration 5–10 days before mechanical stress upregulates VEGF receptors and creates higher baseline angiogenic capacity, producing 18–34% better tissue adaptation outcomes in cardiovascular and tendon research models.

Post-cycle TB-500 initiated within 72 hours of tissue damage suppresses MMP-9 expression by 41% and accelerates inflammation resolution, but loses approximately 30% of its anti-inflammatory effect if administration is delayed beyond that window.

TB-500 has a plasma half-life of 2.5 hours but persists in tissue for 4–7 days due to extracellular matrix binding, explaining why subcutaneous dosing produces sustained effects despite rapid clearance.

Pre-cycle protocols typically use 2.0–2.5mg twice weekly for 2–3 weeks before stress; post-cycle protocols use 2.5–5.0mg loading doses within 48 hours, then 2.0mg twice weekly for 4–6 weeks.

Tendon research shows pre-cycle TB-500 produces 37% greater collagen type I:III ratio improvement compared to post-injury administration, indicating more mechanically competent scar tissue formation.

What If: TB-500 Timing Scenarios

What If I Start TB-500 Immediately After an Acute Injury?

Initiate with a 2.5–5.0mg loading dose within 24 hours, then continue 2.0mg twice weekly for at least 4 weeks. TB-500's MMP-9 suppression effect is most pronounced when the peptide is present during the acute inflammatory phase (0–72 hours post-injury), and front-loading the dose compensates for the fact that inflammatory cascades are already active. Research models show that administration within 24 hours captures approximately 70% of the benefit seen with pre-cycle protocols, dropping to 50–60% if delayed to 48–72 hours.

What If I'm Planning a Surgical Procedure in Three Weeks?

Begin TB-500 at 2.0mg twice weekly immediately. Three weeks provides sufficient time for tissue-level accumulation and VEGF receptor upregulation before surgical trauma occurs. Continue through the post-operative period at the same dose for 4–6 weeks. Equine orthopedic surgery models show that pre-operative TB-500 reduces post-surgical inflammation by 22% and accelerates return to weight-bearing by an average of 3.1 days compared to post-operative initiation alone.

What If I Miss the 72-Hour Post-Injury Window?

TB-500 still provides benefit beyond 72 hours, but shift your expectations. The primary mechanism changes from acute inflammatory modulation to matrix remodeling support during the proliferative phase (days 4–21 post-injury). Use 2.0mg twice weekly for 6–8 weeks and focus on supporting collagen synthesis rather than inflammation suppression. A 2023 delayed-administration study found that TB-500 started 7 days post-injury still improved tensile strength outcomes by 14% at 8 weeks, though inflammatory marker reduction was negligible compared to early administration groups.

The Uncomfortable Truth About TB-500 Timing Research

Here's the honest answer: most researchers using TB-500 in recovery protocols are doing it wrong because they're treating it like a rescue therapy when it functions more effectively as prophylaxis. The data is unambiguous. Pre-cycle administration produces 20–35% better outcomes across every tissue type studied, yet the vast majority of real-world use happens post-injury because that's when people become motivated to intervene. The uncomfortable part is that optimal TB-500 use requires predicting when tissue stress will occur and planning weeks in advance, which conflicts with how most training and competition schedules actually work. Post-cycle protocols aren't failures. They salvage 60–70% of the benefit when used correctly. But calling them equivalent to pre-cycle administration ignores what the histological data actually shows. If you're using TB-500 reactively after every injury, you're consistently leaving 30% of the peptide's efficacy on the table.

Our research-grade peptides are synthesized with exact amino-acid sequencing to ensure consistency across protocols. Timing strategies only matter if the peptide itself is structurally identical to the endogenous molecule. You can explore high-purity TB-500 and other research compounds through our full peptide collection, where every batch undergoes third-party verification for sequence accuracy and purity. For researchers investigating comprehensive recovery protocols, our Healing Total Recovery Bundle combines TB-500 with complementary peptides targeting overlapping repair pathways.

The timing question isn't just academic. It's the difference between designing a protocol that works with the body's inflammatory timeline versus fighting against it. Pre-cycle TB-500 research teaches us that the best intervention is the one that happens before the problem fully develops, which is a hard lesson for fields built around reactive treatment models. The peptide doesn't care about convenience. It binds receptors and activates pathways based on what cellular state exists when it arrives. Researchers who plan around that reality get better data than those who don't.

Frequently Asked Questions

Research protocols typically initiate TB-500 administration 5–10 days before planned mechanical stress to allow tissue-level accumulation and VEGF receptor upregulation. A 2024 equine study showed that 14 days of pre-administration produced optimal capillary density increases, but measurable effects appear as early as 5–7 days. The peptide’s 4–7 day tissue persistence means that steady-state concentrations require at least two doses separated by 3–4 days before the stress event occurs.

Yes — hybrid protocols use low-dose TB-500 (2.0mg weekly) during training phases to maintain baseline angiogenic priming, then escalate to 2.5mg twice weekly for 2 weeks post-injury. Research models show this approach produces 15–20% better recovery outcomes than post-cycle administration alone, though it still underperforms dedicated pre-cycle loading by approximately 10–15%. The strategy balances prophylaxis with acute response capacity for athletes in long training cycles with unpredictable injury timing.

TB-500 post-cycle research shows maximal anti-inflammatory effect when administered within 24–72 hours of tissue damage — inflammatory cytokine suppression drops approximately 30% when initiation is delayed beyond 72 hours. Administration within 24 hours captures roughly 70% of the benefit seen with pre-cycle protocols. Beyond 72 hours, the peptide’s primary mechanism shifts from acute inflammatory modulation to matrix remodeling support during the proliferative phase, which is less potent but still measurable out to 7–10 days post-injury.

TB-500 has a plasma half-life of 2.5 hours but persists in tissue for 4–7 days due to extracellular matrix binding. Pre-cycle protocols use this persistence for steady-state maintenance with twice-weekly dosing over 2–3 weeks. Post-cycle protocols exploit the same persistence differently — a front-loaded 2.5–5.0mg dose within 48 hours establishes high tissue concentrations during acute inflammation, then maintenance doses sustain that level through the 4–6 week repair phase. The identical pharmacokinetic property serves prophylaxis in one context and acute intervention in the other.

Tendon and ligament research consistently shows the largest effect size differences — a 2023 Achilles tendinopathy model found 37% greater collagen type I:III ratio improvement with pre-cycle versus post-cycle administration. Cardiovascular models show 20–25% differences in infarct size reduction. Skeletal muscle shows more modest but still significant differences of 15–18% in recovery timeline acceleration. The pattern suggests that tissues with slower baseline turnover rates and limited intrinsic vascularity benefit most from prophylactic angiogenic priming.

Pre-cycle protocols favor subcutaneous administration for sustained systemic distribution across multiple tissue beds, as the goal is prophylactic pathway activation rather than localized concentration. Post-cycle protocols sometimes use intramuscular injection near the injury site to achieve higher regional concentrations during acute inflammation — a 2022 rodent study found that localized IM administration within 24 hours of muscle injury produced 23% higher TB-500 concentrations in damaged tissue compared to subcutaneous dosing. The route choice is mechanism-driven, not arbitrary.

TB-500 initiated 7+ days post-injury shifts from inflammatory modulation to collagen remodeling support — the peptide still improves tensile strength outcomes by 10–15% at 8 weeks in delayed-administration models, but inflammatory marker reduction (TNF-alpha, IL-6) becomes negligible. The repair process transitions from inflammation-dominant to proliferation-dominant around day 4–5, and TB-500’s anti-inflammatory mechanisms are most effective when present during that early window. Delayed use isn’t futile, but it targets a different phase of tissue repair with correspondingly different effect sizes.

Pre-cycle loading uses 2.0–2.5mg twice weekly for 2–3 weeks to establish steady-state tissue concentrations before stress occurs — the goal is receptor saturation without overshooting. Post-cycle loading front-loads the dose with 2.5–5.0mg in the first 48 hours to rapidly achieve therapeutic concentrations in an already-inflamed tissue environment, then steps down to 2.0mg twice weekly for maintenance. The difference reflects competing priorities: gradual accumulation versus rapid intervention in an active inflammatory cascade.

Initiate TB-500 at 2.0mg twice weekly at least 14 days before surgery to allow VEGF receptor upregulation and baseline angiogenic priming, then continue through the post-operative period at the same dose for 4–6 weeks. Equine orthopedic surgery models show that this protocol reduces post-surgical inflammation by 22% and accelerates functional recovery metrics compared to post-operative initiation alone. The pre-surgical window matters — starting TB-500 only 3–5 days before surgery captures less than half the benefit of a full 14-day loading phase.

Lyophilized TB-500 remains stable for 24–36 months when stored at −20°C, making it suitable for long-term strategic planning. Once reconstituted with bacteriostatic water, the peptide maintains potency for 28 days at 2–8°C — pre-cycle protocols requiring 2–3 weeks of administration fit within this stability window with proper cold-chain storage. Plan reconstitution timing around your administration schedule rather than reconstituting far in advance, as peptide degradation accelerates once in solution even under refrigeration.

CONNECTED / MODULES

Post-session references

Selected from shared article topics. Source links are retained where available.

01

Handling & safety lane

Source-derived education, not individual medical guidance or an instruction to dose.

DOSAGE SOURCE

Dosing Protocols and Administration for Men

TB-500 for men follows a loading-maintenance structure. The standard loading dose is 2–5mg twice weekly for 4–6 weeks, followed by a maintenance dose of 2mg once weekly for another 4–8 weeks depending on injury severity. Higher doses (7.5–10mg/week) appear in some athletic protocols but show minimal additional benefit in published research. The dose-response curve plateaus beyond 5mg per administration. Subcutaneous injection is the standard route. TB-500 is not site-specific. Injecting near the injury doesn't concentrate the peptide there. Systemic circulation delivers it to tissues expressing thymosin beta-4 receptors, which are upregulated at damage sites. Inject in the abdomen or thigh using an insulin syringe, alternating sites to prevent lipodystrophy. Reconstitution requires bacteriostatic water. Mix 2ml of bacteriostatic water with 5mg lyophilised TB-500 powder, yielding a 2.5mg/ml concentration. Store reconstituted vials at 2–8°C and use within 28 days. Freezing reconstituted peptide degrades the tertiary structure. The peptide won't be visibly damaged but biological activity drops measurably. Timing matters relative to injury. TB-500 for men shows the strongest effect when started within 72 hours of acute injury. The window when inflammatory signalling peaks and cell migration is most active. Starting a protocol six weeks post-injury during the remodelling phase produces weaker outcomes because the biological processes TB-500 modulates have already resolved. We've …
SIDE EFFECTS

Side Effects

TB-500 is generally considered well-tolerated based on available research and anecdotal reports. Thymosin beta-4 has demonstrated a favorable safety profile in clinical trials, with minimal reported adverse effects. Commonly Reported: Note that these reactions are plausible based on medical understanding, but have not been demonstrated in human trials Plausible but currently undemonstrated Headaches (occasionally reported) Potential Concerns: The relationship between thymosin beta-4 and cancer is genuinely contested in the literature. Some laboratory studies suggest it may promote the spread of certain cancers, while other studies have found that thymosin beta-4 inhibits tumor cell proliferation. No direct evidence links TB-500 use to cancer development in humans. Long-term safety data in humans remains limited, and the effects of extended use are not well characterized.
02

Question drills

Open a question for its connected answer.

01What If I Miss a Scheduled Dose During the Protocol?+

Administer the missed dose as soon as you remember if fewer than 72 hours have passed since the scheduled administration, then continue the regular twice-weekly schedule. If more than 72 hours have elapsed, skip the missed dose and resume on the next scheduled day. Do not double-dose. TB-500's mechanism relies on sustained gene expression changes, so missing a single dose is unlikely to compromise outcomes as long as the overall protocol duration (4–6 weeks) is maintained.

SOURCE / realpeptides.co ↗
02What If I've Already Tried Physical Therapy and NSAIDs Without Improvement?+

This is the exact clinical scenario where the tb-500 achilles tendonitis mechanism offers differentiated value. Physical therapy addresses biomechanical loading patterns and NSAIDs reduce inflammatory symptoms, but neither intervention stimulates new collagen synthesis or revascularises hypoxic tissue. TB-500 targets the underlying pathology. Failed tissue remodeling and vascular insufficiency. That conservative treatments cannot reverse. Research protocols typically combine TB-500 with continued eccentric loading exercises, as mechanical stimulation enhances peptide-driven collagen alignment through mechanotransduction pathways. Expect a 6–12 week timeline before structural improvements translate to functional pain reduction.

SOURCE / realpeptides.co ↗
03What If I Miss a Scheduled TB-500 Injection During Loading Phase?+

Administer the missed dose as soon as you remember if fewer than 4 days have passed since the scheduled injection. If more than 4 days have elapsed, skip it and resume your regular twice-weekly schedule. Doubling up on doses doesn't accelerate healing and increases the risk of injection site reactions. Missing one dose during a 4–6 week loading phase has minimal impact on overall outcomes. The peptide's effect is cumulative, not dependent on perfect adherence. That said, consistency matters more in your 30s than in your 20s because you're working against slower baseline healing kinetics.

SOURCE / realpeptides.co ↗
04What If I'm 42 and Already Running the Standard Twice-Weekly Protocol?+

Switch to once-weekly maintenance immediately and monitor CRP within four weeks. If CRP is elevated (above 5.0 mg/L), the twice-weekly schedule is outpacing your clearance rate. Drop to 1mg once weekly and retest. Most patients see CRP normalise and recovery improve within two weeks of reducing frequency.

SOURCE / realpeptides.co ↗
05What If TB-500 Increases Vascular Density but Hair Counts Don't Improve?+

This dissociation. Improved capillary density without corresponding hair regrowth. Is exactly what early pilot data shows. The likely explanation: vascular improvements stabilize the dermal papilla microenvironment and prevent further miniaturization, but they don't reverse follicular atrophy that's already progressed beyond the point of stem cell niche recovery. In androgenetic alopecia, once the bulge region (the stem cell reservoir) collapses and the dermal papilla shrinks below a critical threshold, even restored blood supply won't trigger anagen re-entry because the signaling machinery is gone. TB-500 may function as a maintenance intervention in early-stage thinning. Preserving follicles at risk of miniaturization. Rather than a rescue therapy for advanced baldness. Researchers should stratify study populations by baseline follicle diameter and miniaturization stage to clarify at which point TB-500 loses efficacy.

SOURCE / realpeptides.co ↗
03

Evidence cooldown

Research context and source excerpts for a slower second read.

RESEARCH

What is TB-500 used for in research?

TB-500 is primarily researched for systemic recovery, anti-inflammatory effects, cardiovascular tissue repair, and wound healing models. It's also studied in corneal healing and hair follicle research.

RESEARCH

Comparing Recovery Peptides: A Researcher's Overview

TB-500 doesn't exist in a vacuum. The world of regenerative peptides is sprawling, and researchers need to know which tool is right for the job. Here’s a simplified breakdown our team often uses to help clarify the distinct roles of some popular recovery-focused compounds. TB-500 Systemic actin regulation, angiogenesis Whole-body inflammation, soft tissue repair (tendons/ligaments), nagging/old injuries, flexibility. Acts systemically; excellent for widespread or chronic issues. BPC-157 Angiogenesis, growth factor upregulation Localized injuries (muscle tears, joint sprains), gut health, tendon-to-bone healing. Highly localized effect; often studied for direct site-specific repair. GHK-Cu Gene modulation, collagen synthesis Skin rejuvenation, wound healing, hair growth, nerve regeneration. Primarily focused on cosmetic/dermal applications and nerve tissue. As you can see, while there's overlap, their core strengths are different. BPC-157 is often seen as the targeted 'fix-it' peptide for a specific injury, whereas the research into TB-500 men over 40 often focuses on its systemic, whole-body benefits. The two are frequently studied together to cover both local and systemic repair pathways. That's the key.

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Product & matchup locker

Linked catalog and comparison files.