Every product below is built on the same native Wharton’s Jelly foundation described throughout this page — the difference between products is concentration, cell type, and delivery format, not source quality.
| Stem Cell Products | |
|---|---|
| Format | Description |
| 3 mL | 10 Million MSCs – Umbilical Cord Blood Derived Stem Cells |
| 1 mL | 20 Million MSCs – Wharton's Jelly Stem Cells |
| 1 mL | 41.75 Million MSCs – Wharton's Jelly Stem Cells |
| 1 mL | 5 Million Muse Cells + 20 Million MSCs – Wharton's Jelly Stem Cells |
| Muse Cell-Derived Exosomes | |
|---|---|
| Format | Description |
| 1 mL | 350 Billion Muse Cell Exosomes |
| 1 mL | 700 Billion Muse Cell Exosomes |
| MSC-Derived Exosomes | |
|---|---|
| Format | Description |
| 1 mL | 17 Billion MSC Exosomes |
| 5 mL | 100 Billion MSC Exosomes |
| 1 mL | 350 Billion MSC Exosomes |
| 2 mL | 700 Billion MSC Exosomes |
| Wharton's Jelly Scaffolding Matrix & Cord Blood Plasma | |
|---|---|
| Format | Description |
| 1 mL | Wharton's Jelly Scaffolding Matrix |
| 2 mL | Wharton's Jelly Scaffolding Matrix |
| 1 mL | Cord Blood Plasma |
THE FOUNDATION
Stem cell research generally sorts cells into four broad categories: embryonic, adult, induced pluripotent (iPSC), and perinatal. Embryonic stem cells are pluripotent they can become nearly any cell in the body but producing them requires destroying a human embryo, which has made them the subject of ongoing ethical debate, and they carry a documented risk of forming tumors if their differentiation isn’t tightly controlled. Induced pluripotent stem cells sidestep the embryo question entirely by genetically reprogramming a patient’s own adult cells to behave like embryonic ones, but that reprogramming is itself the open question researchers still don’t have long-term certainty about what a reprogrammed cell will do over time. Adult stem cells, harvested from a patient’s own bone marrow or fat tissue, avoid both of those problems, but they come with a cost of their own: they decline in number and potency as the donor ages, and collecting them requires an invasive procedure in the first place.
Perinatal MSCs – harvested from umbilical cord tissue that is otherwise discarded after a healthy birth sit outside all three of those tradeoffs. No embryo is destroyed. No genetic reprogramming is involved. And because the source is a newborn rather than an aging adult, the cells arrive with a differentiation capacity and paracrine potency that a bone marrow donor decades into adulthood simply cannot match. This is why perinatal stem cells have been described in the research literature as combining the most useful qualities of adult and embryonic stem cells, while carrying an immune-privileged profile that neither category reliably offers on its own.
It’s this combination — the ability to find damage on its own, to calm or balance the immune response around it, and to broadcast a wide field of repair signals to everything nearby — that has made MSCs the standard cell type behind modern regenerative medicine.
THE FOUNDATION
Stem cells don’t exist in a vacuum. Every mesenchymal stem cell (MSC) lives inside a “niche” — a specific tissue environment built from growth factors, extracellular matrix proteins, mechanical signals, and chemical cues that tell the cell what it is, how to behave, and how potent to remain.
Pull a cell out of that niche and grow it in something foreign, and the cell survives — but it is no longer the same cell. Published research on stem cell niches confirms that the native microenvironment directly governs a cell’s self-renewal, proliferation, and differentiation capacity, and that culturing MSCs on their own native tissue matrix preserves “stemness” at levels two to seven times higher than culturing on commercial substitutes.
Wharton’s Jelly is the natural living environment for the stem cells inside the umbilical cord — rich in hyaluronic acid, collagens, glycosaminoglycans, and the growth factors that signal these specific cells how to function.
Our laboratory partner holds six issued U.S. and international patents on the only legal method for isolating, purifying, and culturing native Wharton’s Jelly stem cells inside that original tissue environment, rather than transferring them into an artificial growth medium. No other manufacturer in the world is permitted to culture cells this way.
Vitalmax Muse Cell Exosomes are distinguished by their origin from multilineage-differentiating stress-enduring (Muse) cell populations, a unique subset of endogenous reparative cells identified for their resilience and biological signaling capacity. Exosomes derived from these cells carry a concentrated profile of bioactive molecules—including proteins, lipids, mRNA, and microRNA—that play a critical role in intercellular communication. This signaling network supports cellular coordination within the tissue microenvironment, making Muse cell–derived exosomes an area of increasing interest in regenerative and translational research.
Vitalmax exosomes are produced through controlled laboratory processes designed to preserve structural integrity and signaling activity, followed by purification and concentration steps to isolate extracellular vesicles of interest. Each batch undergoes comprehensive quality assessment, which may include particle characterization, sterility testing, and verification of key biological markers associated with extracellular vesicles. This commitment to consistency and transparency supports practitioner confidence and aligns with evolving standards in biologic processing and handling.
What sets Vitalmax apart is its focus on Muse cell–associated signaling biology, combined with a structured, clinician-oriented delivery model. Rather than positioning exosomes as a standalone solution, Vitalmax is designed to integrate into physician-directed care frameworks, complementing existing therapeutic strategies and supporting patient-specific protocols. This approach emphasizes responsible use, clinical consistency, and the growing role of cell-derived signaling technologies in modern regenerative medicine.
SCREENING
Prior to our biologics even being collected, a complete donor medical history, physical and behavioral assessment, and an extensive set of serological tests are performed on the donor. This ensures the donor is a good candidate for the program, being free from disease and also exhibiting high standards of health. All of our collections are performed on donors delivering here within the USA.
COLLECTION
The umbilical cord blood collected is done so aseptically at the time of delivery from healthy pregnant women. Advanced cord blood collection bags containing the only FDA-approved anticoagulant (citrate phosphate dextrose) are always used which aide to increase cell yield and higher levels of treatment success. Harvested specimens are quickly transferred to one of many national processing labs.
PROCESSING
Processing only occurs on freshly collected cord blood that was harvested under aseptic and GMP standards, then further serological tests are performed. The red blood cells, granulocytes, and other non-useful biologics are removed leaving only stem cells in the product. Final tests for growth, viability, and cell counts are performed prior to cryopreservation.
STORAGE
A key reagent is used as the freeze media. This reagent is designed to protect cells at ultra-low temps and prevent intracellular ice. This added protection ensures higher cellular recovery & viability when it comes time for thawing. Cells are frozen at -1°C/minute in a -80°C freezer, and then transferred to liquid nitrogen where they are maintained for storage between -135°C and -160°C.
Each Vitalmax biologic preparation is supported by a comprehensive Certificate of Analysis (COA), providing batch-specific verification of critical quality attributes. Quality control includes extensive microbial testing for bacterial and fungal contaminants, as well as validated mycoplasma screening to detect subclinical contamination. Endotoxin testing is performed to ensure levels remain within established safety thresholds. To further enhance transparency and reliability, third-party analytical verification is utilized where applicable to confirm key product characteristics.
Advanced analytical methods are employed to characterize both cellular and extracellular components. This includes verification of cell counts and viability, along with MSC marker panel analysis (e.g., CD73, CD90, CD105) to confirm phenotype consistency. For extracellular vesicle characterization, Nanoparticle Tracking Analysis (NTA) and Tunable Resistive Pulse Sensing (TRPS) are used to assess particle size distribution and concentration. Additionally, post-thaw analysis is conducted to evaluate product integrity and functional stability following cryopreservation.
Collectively, these multilayered validation processes support consistency, traceability, and quality assurance, aligning with current best practices in biologic processing and providing clinicians with a high level of confidence in product handling and performance characteristics.
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