Tryptophan Metabolism in Rat Liver After Administration of Tryptophan, Kynurenine Metabolites, and Kynureninase Inhibitors
1School of Health Sciences, Cardiff Metropolitan University, Cardiff, Wales, UK.
2Present address: Department of Biochemistry, University of Karachi, Karachi, Pakistan.
CORRESPONDENCE: badawyabdulla@yahoo.comAbstract
Rat liver tryptophan (Trp), kynurenine pathway metabolites, and enzymes deduced from product/substrate ratios were assessed following acute and/or chronic administration of kynurenic acid (KA), 3-hydroxykynurenine (3-HK), 3-hydroxyanthranilic acid (3-HAA), Trp, and the kynureni-nase inhibitors benserazide (BSZ) and carbidopa (CBD). KA activated Trp 2,3-dioxygenase (TDO), possibly by increasing liver 3-HAA, but inhibited kynurenine aminotransferase (KAT) and kynureninase activities with 3-HK as substrate. 3-HK inhibited kynureninase activity from 3-HK. 3-HAA stimulated TDO, but inhibited kynureninase activity from K and 3-HK. Trp (50 mg/kg) increased kynurenine metabolite concentrations and KAT from K, and exerted a temporary stimulation of TDO. The kynureninase inhibitors BSZ and CBD also inhibited KAT, but stimulated TDO. BSZ abolished or strongly inhibited the Trp-induced increases in liver Trp and kynurenine metabolites. The potential effects of these changes in conditions of immune activation, schizophrenia, and other disease states are discussed.
Introduction
The essential amino acid L-tryptophan (Trp) is metabolized by four known pathways, the quantitatively most important of which is the hepatic kynurenine (K) pathway (KP)! (Fig. 1), as it accounts for at least ∼90% of overall disposal of dietary Trp under normal physiological conditions.2–4 The extrahepatic KP contributes little to Trp degradation under normal conditions, but plays a major role after immune activation.4 This latter feature has provided the stimulus for intense research interest in the KP in recent years with the demonstration of the immunosuppressive properties of some of its intermediates, notably 3-hydroxykynurenine (3-HK), 3-hydroxyanthranilic acid (3-HAA), and quinolinic acid (QA), in pregnancy and defense against infection,4–7 and the involvement of these and other kynurenine metabolites (Ks) in a variety of neurological disorders.8,9
Most previous studies of the hepatic KP have focused on changes in the first and rate-limiting enzyme Trp 2, 3-dioxygenase (TDO, formerly Trp pyrrolase: EC 1.13.11.11) and some subsequent enzymes in the pathway induced by Trp, various drugs and other chemicals, and nutritional deficiencies. The potential effects of intermediates of the KP on the hepatic metabolism of Trp have received little attention. Investigating such effects could throw light on feedback control mechanisms of the pathway and the potential modulation of intermediates in pathological conditions associated with elevated Ks. We have previously reported that 3-HK, 3-HAA, and kynurenic acid (KA) induce aversion to alcohol by elevating blood acetaldehyde levels secondary to inhibition of liver aldehyde dehydrogenase activity.10 Aversion to alcohol by the same mechanism and mediated by 3-HK was also demonstrated by combined administration of Trp and the kynureninase inhibitor benserazide (BSZ).11 In these latter two studies, hepatic levels of KA, 3-HK, and 3-HAA were reported after their administration,10 as was 3-HK after administration of BSZ or the other kynureninase inhibitor carbidopa (CBD) in combination with Trp.11 In the present paper, we report the effects of the above three kynurenine metabolites, and also BSZ, CBD, and Trp, on hepatic Trp metabolism by the KP.
Materials and Methods
Chemicals and materials
Trp, 3-HK, 3-HAA, KA, BSZ [(DL-serine 2(2,3,4-trihydroxybenzyl) hydrazine hydrochloride], CBD [s(S)-3-(3,4-dihydroxyphenyl)-2-hydrazino- 2-methylpropionic acid], and other kynurenine metabolites were purchased from the Sigma-Aldrich Co Ltd. and were stored as directed by the manufacturer. Water and methanol (high-performance liquid chromatography: HPLC grade) were purchased from either VWR International or Fisher Scientific. Acids and alkalis of the purest commercially available grades were purchased from VWR International and were made up in HPLC-grade water. Filtration, Eppendorf, and other tubes were purchased from Fisher or other standard suppliers.
Animals and treatments
Adult normal male Wistar rats weighing between 150 and 170 g at the start of experiments were purchased from accredited animal suppliers and were acclimatized to our standard UK Home Office-approved housing conditions (21 ± 2 °C, relative humidity 55 ± 10%, and a 12-hour/12-hour light/dark cycle) for at least one week before experiments. They were housed five per cage in conventional open-top cages with standard softwood bedding from accredited suppliers, and were allowed free access to standard laboratory RM1 diet and water. This study was performed under the auspices of Cardiff University and approved and licensed (PPL 30/2502) by the UK Home Office under the Animal (Scientific Procedures) Act 1986. All compounds were administered intra-peritoneally in 0.9% (w/v) NaCl (physiological saline). 3-HK, 3-HAA, and KA were given in single doses of 1–10 mg/kg body weight, whereas Trp was given in a 50 mg/kg dose. The kynureninase inhibitors BSZ and CBD were given in single doses of 100 and 50 mg/kg, respectively. When given repeatedly for seven days, Trp and BSZ were given in the above single doses once daily, whereas 3-HK, 3-HAA, and KA were given in a single daily 10 mg/kg dose each.
Laboratory procedures
Trp and its K metabolites were determined in liver and serum by our rapid isocratic HPLC procedure.12 Briefly, a Perkin Elmer LC200 system, consisting of a quaternary pump, a column oven, and a degasser, was used with ultraviolet and fluorimetric detection in series. The mobile phase was a methanol/sodium dihydrogen phosphate mixture (27:73 by vol.) at a final pH of 2.0 or 2.8. The system was run isocratically using a Synergi 4 μ reverse-phase Fusion-RP80 A column (250 × 4.6 mm) with a guard column (Phenomenex). Operation of the system, data processing, and handling were all performed by the associated Total Chrome software. A standard mixture of Trp and six of its kynurenine metabolites (1 μg/mL each) was used as calibrant at the start of each run. Results were corrected for full recovery. Kynureninase activity was determined in liver supernatants by measuring the conversion of kynurenine to anthranilic acid, as described previously.11 Kynurenine aminotransferase (KAT) activity was determined under the same experimental conditions by measuring the simultaneous production of KA.
Statistics
Test results were compared with those of control groups by the unpaired t-test using Sigma Plot (Systat), version 11, with which the graphics were prepared. For multiple group comparisons using this program, the Holm–Sidak test was applied, as it is more powerful than the Tukey or Bonferroni tests and can be used for both pairwise comparisons and those versus a control group. Where the data failed the normality (Shapiro–Wilk) test, Kruskal–Wallis one-way ANOVA on ranks was performed. A two-tailed level of significance (P) was set at 0.05.
Results and Discussion
General Conclusions and Comments
The results of the present study, some of which were unexpected, raise a number of issues of importance in relation to control of the hepatic kynurenine pathway and its role in health and disease. Feedback control of the KP is generally thought to involve allosteric inhibition of TDO activity by the end products NAD(P)H.37 Additionally, it has been suggested2,26 that TDO could be inhibited by 3-HK and 3-HAA at concentrations (5 μM) close to physiological or pathological levels. However, the present results suggest that administration of 3-HK does not influence TDO activity, whereas that of 3-HAA actually enhances it. KA also enhances TDO possibly via 3-HAA. Rat liver TDO activity had previously been shown to be enhanced by the administration of 3-HAA and also K, XA, picolinic acid, and quinolinic acid,38 though at doses of 10 (K) or 25 mg/kg (all others). In situations in which KA (schizophrenia), 3-HK, 3-HAA, or QA (immune activation) are increased, we could expect a further increase in the flux of Trp through TDO, resulting in the production of more immunosuppressive kynurenines. If Trp is additionally administered, the flux could be even greater to an extent that pathological immunosuppression could result with negative health consequences.7 We therefore suggest that Trp should not be used in immune conditions. In schizophrenia, clinical trials have demonstrated39,40 that Trp does not improve core symptoms of schizophrenia even though it ameliorates aggressive symptoms and improves memory function. By contrast, a low-Trp diet improves scores on certain tests of brain function and also psychotic symptoms.41 As [KA] is elevated in schizophrenia, further stimulation of KAT A by exogenous Trp can only perpetuate the glutamatergic hypoactivity state of this illness. However, the elevation of 3-HK and 3-HAA by KA could have positive consequences in conditions requiring immunosuppression.
The kynureninase inhibitors BSZ and CBD exert unexpected effects on the KP, notably stimulation of TDO activity. In alcoholism, we proposed the use of a combination of BSZ and Trp as an alcohol aversion therapy, but with potential effects on NMDA receptor function to combat the hyperexcitability state of acute alcohol withdrawal.11 Inhibition of KAT A in addition to that of kynureninase offers potential opportunities for BSZ and CBD, especially the former. KAT inhibition is a desirable goal in the treatment of schizophrenia.42 and the potential benefit from BSZ has not been adequately explored. Two clinical trials of BSZ alone43 or jointly with Trp44 gave negative results, but the decrease in [KA] by BSZ reported in Table 3 warrants exploration in humans. Data presented here support the suggestion in the preceding paper30 that a suitable Trp dose for Trp loading to assess the KP in humans in the absence of TDO activation should be <50 mg/kg, closer to the 2 g traditional dose, but based on body weight, namely, 30 mg/kg.
Although most of the data in the present study were obtained in liver and therefore apply to the hepatic KP including among others the first and most rate-limiting enzyme TDO, data in serum must reflect total body KP activity, including any likely contribution of indoleamine 2,3-dioxygenase (IDO) and subsequent enzymes distributed in different organs and tissues. Whereas most studies have investigated the effects of IDO induction on K metabolites, as far as we could ascertain, very little has been done to assess the potential effects of these metabolites on IDO activity. It is possible that K metabolites exert immunomodulatory effects, resulting in changes in IDO activity. For example, KA administration to mice exerts anti-inflammatory effects and lowers the levels of proinflammatory cytokines in splenocytes,45 which is likely to decrease IDO activity. However, such a potential decrease is unlikely to influence plasma or tissue Trp levels because such levels are not influenced by pharmacological inhibition of activity of IDO46 or its gene deletion.47 Whether administration of other immunomodulatory K metabolites, such as 3-HK, 3-HAA, or QA, can influence IDO remains to be assessed in future studies.
Acknowledgments
AA-BB holds an honorary professorial position at Cardiff Metropolitan University and thanks Alex Steptoe for skillful technical assistance and Cardiff University for provision of facilities.
Abbreviations
- AA
- anthranilic acid
- BSZ
- benserazide
- CBD
- carbidopa
- HPLC
- high-performance liquid chromatography
- 3-HAA
- 3-hydroxyanthranilic acid
- 3-HK
- 3-hydroykynurenine
- IDO
- indoleamine 2,3-dioxygenase
- KA
- kynurenic acid
- Kynase
- kynureninase
- Kynase A
- kynureninase from K → AA
- Kynase B
- kynureninase from 3-HK → 3-HAA
- K
- kynurenine
- Ks
- total kynurenines
- KAT
- kynurenine aminotransferase
- KAT A
- kynurenine aminotransferase from K → KA
- KAT B
- kynurenine aminotransferase from 3-HK → XA
- KP
- kynurenine pathway
- QA
- quinolinic acid Trp: tryptophan
- TDO
- tryptophan 2,3-dioxygenase
- XA
- xanthurenic acid
| DOSE OF KA (mg/kg) | 3-HK | 3-HAA | KA | AA | |
|---|---|---|---|---|---|
| 0 | Liver | 2.86 ± 0.68 | 0.10 ± 0.01 | 0.07 ± 0.02 | 0.16 ±0.06 |
| Serum | 3.79 ± 0.32 | 0.95 ± 0.12 | 0.85 ± 0.18 | UD | |
| 1 | Liver | 3.47 ± 0.65 | 0.18 ± 0.06 | 28.1 ± 1.2* | 0.53 ±0.21 |
| Serum | 3.46 ± 0.27 | 0.75 ± 0.08 | 3.20 ± 0.59* | (0.05, 0.41) | |
| 2.5 | Liver | 18.6 ± 1.0* | 1.13 ± 0.32* | 30.6 ± 0.8* | 0.27 ± 0.14 |
| Serum | 4.87 ± 0.32* | 0.61 ± 0.09 | 3.28 ± 0.09* | UD | |
| 5 | Liver | 11.6 ± 3.9* | 1.67 ± 0.74 | 35.1 ± 5.2* | 0.89 ± 0.54 |
| Serum | 3.55 ± 0.44 | 0.81 ± 0.18 | 4.01 ± 0.45* | (0.10, 0.01) | |
| 7.5 | Liver | 16.0 ± 1.0* | 1.62 ± 0.74 | 37.4 ± 18.8* | 1.01 ± 0.35* |
| Serum | 4.59 ± 0.47 | 0.61 ± 0.13 | 11.2 ± 0.2* | (0.24) | |
| 10 | Liver | 18.8 ± 0.1* | 0.84 ± 0.25* | 54.5 ± 9.6* | 0.39 ± 0.11 |
| Serum | 4.90 ± 0.43 | 0.52 ± 0.06 | 26.4 ± 1.4* | (0.01, 0.19) |
| PARAMETER | LIVER | SERUM | ||||||
|---|---|---|---|---|---|---|---|---|
| CONTROL | KA | 3-HK | 3-HAA | CONTROL | KA | 3-HK | 3-HAA | |
| Trp | 21.2 ± 1.8 | 20.7 ± 0.9 | 19.2 ± 1.3 | 17.0 ± 0.9 | 75 ± 4 | 68 ± 4 | 66 ± 4 | 63 ± 2* |
| K | 5.4 ± 0.3 | 6.3 ± 0.1* | 9.5 ± 0.8* | 3.6 ± 0.8* | 5.8 ± 0.5 | 5.5 ± 0.6 | 6.2 ± 0.6 | 10.9 ± 0.9* |
| KA | 4.3 ± 0.2 | 10.6 ± 0.9* | 4.4 ± 0.5 | 2.7 ± 0.4* | 0.8 ± 0.1 | 3.8 ± 0.8* | 0.23 ± 0.03* | 0.10 ± 0.04* |
| AA | 3.0 ± 0.1 | 3.4 ± 0.3 | 0.8 ± 0.1* | 5.0 ± 0.5 | 3.7 ± 0.8 | 5.1 ± 0.2 | 4.3 ± 0.1 | 3.7 ± 0.1 |
| 3-HK | 4.8 ± 0.3 | 5.6 ± 0.3 | 18.6 ± 1.7* | 14.1 ± 2.2* | 7.2 ± 0.7 | 7.5 ± 0.8 | 17.3 ± 2.2* | 8.7 ± 1.5 |
| XA | 0.02 ± 0.01 | 0.04 ± 0.02 | 1.1 ± 0.2* | 1.4 ± 0.2* | 2.1 ± 0.4 | 2.6 ± 0.2 | 4.8 ± 1.1* | 2.5 ± 0.3 |
| 3-HAA | 4.9 ± 0.4 | 5.2 ± 0.5 | 7.5 ± 1.3 | 10.3 ± 0.3* | 0.05 ± 0.01 | 0.06 ± 0.02 | 4.9 ± 1.1* | 11.0 ± 1.7* |
| PARAMETER | LIVER | SERUM | ||||||
|---|---|---|---|---|---|---|---|---|
| CONTROL | BSZ | TRP | BSZ + TRP | CONTROL | BSZ | TRP | BSZ + TRP | |
| Trp | 12.3 ± 0.42 | 14.0 ± 0.7 | *26.7 ± 1.9 | *20.0 ± 1.7*¶ | 70 ± 3 | *58 ± 2 | *155 ± 9 | *96 ± 2*¶ |
| K | 7.3 ± 0.8 | *11.8 ± 1.0 | *11.8 ± 1.5 | *12.4 ± 1.4 | 3.3 ± 0.4 | 3.7 ± 0.4 | *6.8 ± 0.5 | 4.8 ± 0.6* |
| KA | 0.46 ± 0.14 | 0.58 ± 0.03 | *1.32 ± 0.28 | 0.42 ± 0.10* | 0.44 ± 0.16 | 0.24 ± 0.07 | *1.61 ± 0.32 | 0.36 ± 0.18* |
| AA | 1.99 ± 0.62 | 1.94 ± 0.50 | *4.39 ± 0.11 | 1.40 ± 0.33* | 2.59 ± 0.64 | 3.87 ± 0.37 | *7.83 ± 1.10 | 1.71 ± 0.22*¶ |
| 3-HK | 5.5 ± 1.5 | *52.6 ± 8.8 | *61.7 ± 9.2 | *112.5 ± 5.4*¶ | 8.8 ± 0.5 | *23.4 ± 1.0 | *28.5 ± 3.8 | *100.7 ± 5.7*¶ |
| XA | 0.17 ± 0.08 | 0.16 ± 0.02 | *1.50 ± 0.22 | *0.47 ± 0.04*¶ | 0.56 ± 0.07 | *0.09 ± 0.02 | 0.57 ± 0.07 | 0.58 ± 0.06¶ |
| 3-HAA | 2.43 ± 0.54 | 2.51 ± 0.70 | *7.42 ± 1.36 | 3.58 ± 0.66* | 0.01 ± 0.005 | 0.07 ± 0.04 | *6.79 ± 1.30 | *2.38 ± 1.03*¶ |
| KOHase | 88 ± 31 | *483 ± 111 | *564 ± 100 | *987 ± 114*¶ | 264 ± 50 | *626 ± 69 | 421 ± 82 | *2120 ± 199*¶ |
| KAT A | 4.5 ± 0.5 | 5.2 ± 0.6 | *9.3 ± 1.5 | 3.2 ± 0.5* | 13.2 ± 3.4 | 6.4 ± 2.6 | *26.0 ± 7.6 | 7.6 ± 4.6 |
| KAT B | 6.7 ± 1.4 | *0.3 ± 0.07 | *2.6 ± 0.5 | *0.4 ± 0.04* | 6.4 ± 0.9 | *0.4 ± 0.2 | *2.0 ± 0.3 | *0.6 ± 0.08* |
| Kynase A | 34 ± 8 | *18 ± 5 | 39 ± 3 | *12 ± 3* | 78 ± 34 | *17 ± 2 | 116 ± 19 | *36 ± 5* |
| Kynase B | 51.6 ± 6.6 | *5.6 ± 1.7 | *12.0 ± 1.3 | *3.0 ± 0.6* | 0.13 ± 0.07 | 0.30 ± 0.17 | *23.4 ±6.2 | 2.36 ± 1.05* |
| TDO | 59 ± 7 | *86 ± 10 | *44 ± 4 | 61 ± 3* | 4.8 ± 0.7 | 6.4 ± 0.9 | 4.4 ± 0.3 | 4.9 ± 0.5 |
| Ks | 3.0 ± 0.3 | *11.6 ± 1.4* | 16.0 ± 2.9 | *24.1 ± 1.4* | 2.6 ± 0.1 | *5.2 ± 0.2 | *8.7 ± 0.7 | *18.5 ± 0.9*¶ |
| TTOX | 24.4 ± 2.9 | *83.1 ± 8.5 | *59.3 ± 8.2 | *123.3 ± 10.4*¶ | 3.7 ± 0.3 | *9.0 ± 0.5 | 5.6 ± 0.7 | *19.2 ± 0.9*¶ |
| TREATMENT GROUP | KYNURENINASE | KYNURENINE AMINOTRANSFERASE |
|---|---|---|
| Control | 7.46 ± 0.28 | 1.12 ± 0.03 |
| Benserazide | *6.12 ± 0.42 | *0.44 ± 0.02 |
| Tryptophan | 7.40 ± 0.39 | 0.97 ± 0.09 |
| Benserazide + tryptophan | *5.56 ± 0.73* | *0.32 ± 0.01*¶ |