
Construido por la ciencia. Probado en rendimiento.
La investigación de InnovAAte está dirigida por científicos de renombre mundial:
- Prof. Hugh Dunstan (D.Phil, Oxford)
- Prof. Tim Roberts (PhD, Flinders)
- Dra. Margaret Macdonald (D.Phil, Oxford)
Con más de 270 publicaciones revisadas por pares combinadas, nuestro equipo ha aportado décadas de conocimiento sobre el metabolismo de los aminoácidos, la ciencia de la hidratación y la bioquímica del ejercicio.
Cada producto de InnovAAte está respaldado por esta experiencia y desarrollado para ayudar a las personas a vivir, entrenar y recuperarse mejor.


De la curiosidad al descubrimiento clínico.
En InnovAAte, cada fórmula que creamos se basa en décadas de investigación sobre el papel de los aminoácidos en el rendimiento físico, el estrés y la recuperación. No especulamos. Investigamos, modelamos y publicamos. Nuestros productos son desarrollados por científicos líderes que han dedicado sus carreras a comprender las necesidades bioquímicas del cuerpo, especialmente bajo tensión física.
Todo comenzó con una pregunta:
¿Qué pierde realmente tu cuerpo cuando sudas?
La respuesta lo cambió todo.
The research that formed the foundation of the HDAA concept
Three scholarly research articles specifically investigated amino acid losses through sweat to determine that six amino acids are lost in substantially greater quantities than the other amino acids in the body.

Quantifying Sweat-Facilitated Amino Acid Loss (SFLAA) and Catabolic Risk
This paper demonstrates that exercise-induced sweating causes substantial sweat-facilitated amino acid loss (SFLAA), which threatens plasma homeostasis and triggers skeletal muscle proteolysis. It maps sweat kinetics to show that initial amino acid leaching from skin surfaces diminishes after 35 minutes, giving way to true eccrine clearance.
Finally, utilizing principal component analysis, the study phenotypically stratifies athletes into Low, Intermediate, and High SFLAA clusters. This identifies high-excretors who lose up to 22.8 mmol/h of amino acids, establishing a clinical rationale for targeted free-form amino acid supplementation.

La respuesta catabólica: Qué ocurre cuando te excedes
Cuando el suministro de HDAA no puede satisfacer la demanda, el cuerpo activa la respuesta catabólica, que descompone la proteína muscular para acceder a lo que necesita para seguir funcionando. Este proceso es natural, pero la depleción prolongada o repetida sin una recuperación específica ralentiza el rendimiento, retrasa la reparación y aumenta la fatiga.
Nuestra investigación demuestra que la reposición rápida y específica de HDAA después del esfuerzo puede:
- Reducir la degradación muscular
- Favorecer una recuperación más rápida
- Mejorar la resistencia durante el esfuerzo repetido

Por qué tu sudor es importante
El sudor no es solo agua y sal. Contiene aminoácidos vitales, y fuimos de los primeros en demostrarlo.
En 2014, nuestros científicos fundadores publicaron una investigación innovadora que identificaba el contenido de aminoácidos en el sudor humano, cuantificando la pérdida de HDAA bajo diversas condiciones de estrés ambiental y físico. Estos hallazgos ayudaron a redefinir cómo entendemos la renovación de proteínas, la preservación muscular y la hidratación bajo estrés.
The research that shaped our understanding of the requirements for HDAA supplementation
Our series of focused research articles identifies the bottlenecks of digestive processes and losses through sweat. As a result, it becomes clear how high-demand amino acids (HDAAs) can greatly reduce muscle catabolism and accelerate recovery. These studies demonstrate how specialised, free-form amino acid protocols directly prevent secondary BCAA wasting and support sustained metabolic health for athletes and patients. Explore the clinical evidence for HDAA-based nutritional strategies provided below.

Clinical Introduction to High-Demand Amino Acid (HDAA) Therapeutics
This article introduces the framework of High-Demand Amino Acids (HDAAs)—histidine, serine, glycine, lysine, ornithine, and aspartic acid—and models their accelerated depletion during exercise, trauma, or infection.
- It demonstrates that because the body lacks amino acid storage reservoirs, these rapidly cleared deficits trigger muscle proteolysis to sustain vital metabolic and structural systems.
Finally, it establishes a clinical rationale for targeted, free-form HDAA supplementation to bypass post-exertion gastrointestinal digestive delays, suppress the catabolic response, and preserve skeletal muscle mass.

The Phenotypic Velocity of Amino Acid Clearance and Secondary BCAA Wasting
This article demonstrates how metabolic stress from exercise or infection drives severe musculoskeletal wasting by outpacing dietary protein intake. It phenotypically stratifies individuals, showing that high-excretor types drain their entire circulating plasma amino acid reservoir via sweat every 17 minutes.
Crucially, the study reveals a destructive metabolic feedback loop: breaking down skeletal muscle to replenish these localized High-Demand Amino Acid (HDAA) deficits inadvertently releases lower-demand amino acids, forcing secondary, irreversible branched-chain amino acid (BCAA) wasting.
It establishes a clinical model for targeted free-form HDAA therapy to protect lean mass.

Enzymatic Bottlenecks in Collagen Synthesis and Oxidative Phosphorylation
This article establishes the metabolic indispensability of glycine and histidine during high-stress states, demonstrating how structural repair and cellular energy systems are limited by endogenous synthesis bottlenecks. It outlines that glycine production is strictly capped by tetrahydrofolate methylation requirements, failing to meet the massive skeletal demands of collagen, elastin, and keratin matrices.
Furthermore, it connects chronic deficits in these High-Demand Amino Acids (HDAAs) to impaired erythropoiesis and cytochrome-driven oxidative phosphorylation, providing a biochemical blueprint for targeted free-form supplementation to prevent clinical fatigue and downregulate muscle-wasting pathways.

Ion-Exchange Resorption Metrics: The 343% Plasma Amino Acid Deficit
This article exposes a critical flaw in conventional hydration strategies by quantifying that one hour of sweating drains a staggering 343% of the body's total circulating High-Demand Amino Acids (HDAAs).
Driven by active ductal ion-exchange mechanisms that sacrifice amino acids to resorb sodium, this rapid clearance empties plasma nutrient pools. Because standard electrolyte drinks fail to replace this nitrogen loss, the body is forced into immediate skeletal muscle catabolism to preserve homeostasis.
The study establishes a clinical rationale for combined HDAA and electrolyte rehydration to protect muscle integrity.

The Triage Hierarchy of Aging: Overcoming Renal Nitrogen Limits via Targeted HDAAs
This article applies Bruce Ames’ Triage Theory to aging, demonstrating how nutrient scarcity forces the body to prioritize short-term survival over long-term cellular maintenance. It identifies a key catabolic triad driving sarcopenia—inactivity, low intake, and declining digestive efficiency—which severely limits amino acid absorption.
Crucially, the study illustrates how standard high-protein diets risk inducing harmful aminoaciduria in patients with renal limitations.
Ultimately, it provides evidence that targeted free-form High-Demand Amino Acid (HDAA) replenishment safely stimulates muscle protein synthesis and preserves skeletal lean mass without overloading renal nitrogen pathways.
Más que hidratación. Más que recuperación.
Estamos construyendo la próxima generación de suplementos de aminoácidos. Dirigidos. Transparentes. Con la confianza de profesionales. Explora la ciencia. Entiende tu sudor. Aliméntate de forma más inteligente.



