+

Change test title

Change test text first Change test text second
Yes login

No cancel
+

Change test title

Change test text first Change test text second
Yes login

No cancel
+

Change test title

Change test text first Change test text second
Yes login

No cancel
+

Change test title

Change test text first Change test text second
Yes login

No cancel
+

Delete this test

You're about to permanently delete all results and data for the test you’re signed in with. To confirm, re-enter that same test ID.

Incorrect test ID

Please enter the same test ID you used to log in.
+

Are you sure you want to delete this test?

Once deleted, your test results cannot be recovered.
Test ID:12455TT
Delete permanently
No cancel
+
+

Information on personal data processing

At Zinzino, we are dedicated to safeguarding your privacy. We process your email address and/or phone number to notify you when your test result is ready, based on our legitimate interest to be able to ensure a smooth test procedure (GDPR, Article 6.1(f)). Thereafter the personal data is deleted.

All other data handled by us during the test procedure is kept anonymous, including the test result. You have the right to request access to your personal data and to request its deletion at any time. You may also opt-out of receiving notifications.

You can contact us here with any questions: customer.global@zinzino.com
Loading...
+
Logo
+
Logo
+
Logo

We are terribly sorry!

We’ve experienced technical problems and unfortunately need a new sample from you, please contact our customer service for further instructions.
TO THE FORM

Your form is already sent.

We have received your request to send a new test kit.

Do you have more questions please contact customer support
Customer support
Close

Your sample contained too little blood

Your sample contained too little blood and we were unable to analyze your fatty acids. Unfortunately, we need a new sample from you. Please, fill in our form to receive a new BalanceTest.
TO THE FORM

Your sample was missing in the envelope

It looks like you forgot to put your sample into the envelope. Unfortunately, we’ll need a new sample from you. Please, fill in our form to receive a new BalanceTest.
TO THE FORM
Thank you. We have now received your request.

Please, fill in the following information and we’ll provide you with a new BalanceTest.

Send
+
Logo
+
Logo
+
Logo
+
Logo
+
Logo
+
Logo
Loading...
+
Logo
×

According to EFSA:


1.    DHA contributes to the maintenance of normal brain function
2.    EPA and DHA contribute to the normal function of the heart

 

According to EFSA, vitamin D: 

 

3.    contributes to normal absorption/utilization of calcium and phosphorus
4.    contributes to normal blood calcium levels
5.    contributes to the maintenance of normal bones
6.    contributes to the maintenance of normal muscle function
7.    contributes to the maintenance of normal teeth
8.    contributes to the normal function of the immune system
9.    has a role in the process of cell division
 

 

 

Enter your test ID
Ok
id:
Country:
Sex:
Age:
EssentOil:
Other Omega-3:
BalanceOil AquaX:
BalanceOil Vegan:
Essent (softgels):
Top Image

Tryptophan metabolism

A molecular bridge

Increasing evidence suggests that microbial metabolites are key mediators in the crosstalk between dietary intake and host health, and among these microbial products, tryptophan has gained particular attention. Not because it is the most abundant amino acid, but because it follows multiple tightly regulated metabolic fates with broad physiological effects.

 

Despite its relatively low abundance in proteins and cells, tryptophan plays an indispensable role in immune regulation, metabolic signaling, and neurobiology. Its catabolism (breakdown) gives rise to a variety of bioactive metabolites that influence everything from energy metabolism, redox balance, gut barrier function, immune tone, and neurotransmitter synthesis.

Once absorbed, tryptophan is metabolized along three major pathways: the kynurenine pathway (via host cells), the serotonin pathway (via host cells), and the indole pathway (via gut microbiota).  

 

  1. The kynurenine pathway is the dominant route accounting for over 95% of dietary tryptophan catabolism. While it primarily occurs in the liver (via TDO), it is also activated in immune and barrier tissues (via IDO), especially under immune stress and activation. This pathway yields a variety of bioactive intermediates and ultimately contributes to the endogenous synthesis of NAD+, a vital cofactor involved in mitochondrial energy metabolism, redox balance, and DNA repair.
    When immune stress is sustained, more tryptophan is directed into this pathway, and imbalances can occur. Under favorable conditions, downstream metabolism favors the production of beneficial metabolites like kynurenic acid (KYNA), while also supporting efficient NAD+ synthesis. When the balance shifts – due to enzyme bottlenecks, oxidative stress, micronutrient insufficiencies, or prolonged immune activation – metabolism becomes skewed toward intermediates such as quinolinic acid (QA) and 3-hydroxykynurenine (3-OH-KYN). 

    QA acts on NMDA receptors and can amplify excitatory signaling in the brain.
    3-OH-KYN promotes oxidative stress and lipid peroxidation.
    Reduced flow through the NAD+-producing end of the pathway can result in relative NAD+ depletion, challenging mitochondrial efficiency, cellular energy, and overall resilience. 

    Such patterns are often seen in contexts of persistent immune stress and metabolic imbalance.
     
  2. The serotonin pathway converts tryptophan into serotonin (5-HT). Though it uses only 1-2% tryptophan, it plays a significant role in regulating mood, gut motility, and circadian rhythms. Shifts in this pathway may influence mood balance, digestive function, and sleep quality. 
     
  3. The indole pathway is driven by microbial metabolism in the colon. Certain gut bacteria express tryptophanase enzymes that convert tryptophan into indole and its derivatives, including indole-3-propionic acid (IPA). These metabolites are ligands for the aryl hydrocarbon receptor (AhR), Supporting gut barrier integrity, immune tolerance, and systemic balance. 
     

The balance between these metabolic pathways is not simply a biochemical curiosity; it reflects both the functional state of gut microbial activity and the presence of systemic immune stress. Together, they determine whether tryptophan is routed toward protective or stress-associated metabolic products (metabolites) – with downstream consequences for gut, immune, and metabolic health. 
 

A healthy, fiber-rich diet promotes the microbial production of IPA, which then supports gut barrier integrity and metabolic resilience. Conversely, systemic inflammation, stress, and dysbiosis shift the balance in tryptophan metabolism toward an excessive flux through the kynurenine route, increasing the production of stress-associated metabolites.  
 

This is why tryptophan metabolism is now viewed as a molecular bridge linking the gut microbiome to systemic health. By examining these metabolic pathways, we gain a novel lens through which to assess lifestyle and diet’s impact on for example  immunity, mood and metabolism. 

 

Quick summary

  • Tryptophan is metabolized into different products by the host (your body) and microbiota (the microbes living inside your body), depending on how it is processed – and each of these products has unique functions in the body. 
  • The kynurenine pathway dominates during immune stress, while the indole pathway flourishes in gut health. 
  • This metabolic balance links diet and microbiome activity to immunity, mood, and metabolism.
<