The Brown Alga Stypopodium zonale (Dictyotaceae): A Potential Source of Anti-Leishmania Drugs

This study evaluated the anti-Leishmania amazonensis activity of a lipophilic extract from the brown alga Stypopodium zonale and atomaric acid, its major compound. Our initial results revealed high inhibitory activity for intracellular amastigotes in a dose-dependent manner and an IC50 of 0.27 μg/mL. Due to its high anti-Leishmania activity and low toxicity toward host cells, we fractionated the lipophilic extract. A major meroditerpene in this extract, atomaric acid, and its methyl ester derivative, which was obtained by a methylation procedure, were identified by nuclear magnetic resonance (NMR) spectroscopy. Both compounds inhibited intracellular amastigotes, with IC50 values of 20.2 μM (9 μg/mL) and 22.9 μM (10 μg/mL), and selectivity indexes of 8.4 μM and 11.5 μM. The leishmanicidal activity of both meroditerpenes was independent of nitric oxide (NO) production, but the generation of reactive oxygen species (ROS) may be at least partially responsible for the amastigote killing. Our results suggest that the lipophilic extract of S. zonale may represent an important source of compounds for the development of anti-Leishmania drugs.


Introduction
Leishmaniasis comprises a wide spectrum of diseases that are characterized by cutaneous, mucosal, and visceral organ lesions. The form and morbidity of the disease are dependent upon both the Leishmania species and immunological status of the host [1]. Leishmaniasis affects all continents and approximately 0.2 to 0.4 million cases of visceral leishmaniasis and 0.9 to 1.2 million cases of cutaneous leishmaniasis occur annually, causing significant morbidity and mortality. Thus, leishmaniasis is recognized as one of the most neglected tropical diseases for which drug development has been stimulated by the Drugs for Neglected Diseases Initiative [2]. Currently, pentavalent antimonials, pentamidine, amphotericin B, and paromomycin are the drugs available for the treatment of leishmaniasis. However, all of these drugs exhibit toxicity, adverse side effects, and increased incidence of the emergence of drug-resistant strains, which reinforces the need to develop new approaches for leishmaniasis therapy [2,3].
Here, we describe the anti-leishmanial activity of lipophilic extract of Stypopodium zonale and meroditerpenoid atomaric acid, the major compound isolated from the lipophilic extract of S. zonale. Additionally, the methyl ester derivative of atomaric acid was obtained by a methylation procedure and tested against the same parasites. The extract of the compounds, atomaric acid, and its methyl ester derivative, inhibited the growth of Leishmania amazonensis intracellular amastigotes in infected macrophages and exhibited low toxicity for the host cells. These findings characterize Stypopodium zonale as a potential source of substances for the development of drugs for leishmaniasis treatment.

Anti-Leishmania Activity of Stypopodium zonale Extract
Initially, we investigated the potential leishmanicidal effects of SZE on Leishmania amazonensis. Thus, promastigotes were treated with 10 or 50 µg/mL of SZE and parasite viability was evaluated. Our findings showed that SZE inhibited 100% of promastigote growth two days after treatment at both concentrations that we assayed ( Figure 2). To test the safety of SZE in mammalian cells, macrophages were treated with different concentrations of SZE and cell viability was assessed using the 2,3-bis(2-methoxy-4-nitro-5-sulfophenyl)-2H-tetrazolium-5-carboxanilide inner salt (XTT) assay. Treatment with SZE up to a concentration of 50 µg/mL was not toxic for host cells (Figure 3). The anti-amastigote activity of SZE was evaluated in L. amazonensis-infected peritoneal macrophages treated for 24 h with different concentrations of SZE. Our results indicated that SZE inhibited intracellular amastigotes in a concentration-dependent manner, with 42%, 60% and 95.2% inhibition at 0.001, 1, and 10 µg/mL, respectively, while amphotericin B (AMB) at 0.1 µg/mL caused a 24.5% reduction in amastigote growth ( Figure 4). The IC 50 of SZE for amastigotes was 0.27 µg/mL.

Anti-Leishmania Activity of Stypopodium zonale Extract
Initially, we investigated the potential leishmanicidal effects of SZE on Leishmania amazonensis. Thus, promastigotes were treated with 10 or 50 μg/mL of SZE and parasite viability was evaluated. Our findings showed that SZE inhibited 100% of promastigote growth two days after treatment at both concentrations that we assayed ( Figure 2). To test the safety of SZE in mammalian cells, macrophages were treated with different concentrations of SZE and cell viability was assessed using the 2,3-bis(2-methoxy-4-nitro-5-sulfophenyl)-2H-tetrazolium-5-carboxanilide inner salt (XTT) assay. Treatment with SZE up to a concentration of 50 μg/mL was not toxic for host cells (Figure 3). The anti-amastigote activity of SZE was evaluated in L. amazonensis-infected peritoneal macrophages treated for 24 h with different concentrations of SZE. Our results indicated that SZE inhibited intracellular amastigotes in a concentration-dependent manner, with 42%, 60% and 95.2% inhibition at 0.001, 1, and 10 μg/mL, respectively, while amphotericin B (AMB) at 0.1 μg/mL caused a 24.5% reduction in amastigote growth ( Figure 4). The IC50 of SZE for amastigotes was 0.27 μg/mL.

Anti-Leishmania Activity of Stypopodium zonale Extract
Initially, we investigated the potential leishmanicidal effects of SZE on Leishmania amazonensis. Thus, promastigotes were treated with 10 or 50 μg/mL of SZE and parasite viability was evaluated. Our findings showed that SZE inhibited 100% of promastigote growth two days after treatment at both concentrations that we assayed ( Figure 2). To test the safety of SZE in mammalian cells, macrophages were treated with different concentrations of SZE and cell viability was assessed using the 2,3-bis(2-methoxy-4-nitro-5-sulfophenyl)-2H-tetrazolium-5-carboxanilide inner salt (XTT) assay. Treatment with SZE up to a concentration of 50 μg/mL was not toxic for host cells ( Figure 3). The anti-amastigote activity of SZE was evaluated in L. amazonensis-infected peritoneal macrophages treated for 24 h with different concentrations of SZE. Our results indicated that SZE inhibited intracellular amastigotes in a concentration-dependent manner, with 42%, 60% and 95.2% inhibition at 0.001, 1, and 10 μg/mL, respectively, while amphotericin B (AMB) at 0.1 μg/mL caused a 24.5% reduction in amastigote growth ( Figure 4). The IC50 of SZE for amastigotes was 0.27 μg/mL.

Leishmanicidal Activity of Atomaric Acid (ATA) and Its Methyl Ester Derivative (AAE)
To identify the anti-leishmanial active compounds in SZE, we first tested ATA, the major compound present in this extract, along with its derivative AAE on the proliferation of L. amazonensis ( Figure 5). ATA and AAE at 50 μM inhibited promastigote growth by up to 86% and 100%, respectively, after three days with only a single treatment. To test the safety of ATA and AAE on host cells, we evaluated the dehydrogenase activity of macrophages using the XTT method. We found that treatment of macrophages with ATA or AAE only affected dehydrogenase activities at high concentrations ( Figure 6A,B). ATA was cytotoxic for macrophages at 300 μM, affecting 64.5% of cells viability, while AAE at 200 μM affected the viability of 60% of macrophages. The CC50 values for macrophages treated with ATA and AAE were 169.5 μM (75 μg/mL) and 262.5 μM (209 μg/mL), respectively (Table 1).
To evaluate the anti-amastigote activity of ATA and AAE, we treated infected macrophages with these compounds. We found that a 24 h treatment with ATA at 0.1, 1, 10, and 100 μM killed 17%, 26%, 36%, and 52% of amastigotes, respectively ( Figure 7A). AAE administered at the same concentrations killed 20%, 30%, 36%, and 62% of the amastigotes ( Figure 7B). The IC50 values of ATA and AAE were 20 μM (9 μg/mL) and 23 μM (10 μg/mL), respectively (Table 1). Anti-amastigote activity of SZE. Peritoneal murine macrophages infected with Leishmania amazonensis were treated with SZE at the indicated concentrations. DMSO at 0.01% (vehicle) and Amphotericin B [AMB] at 0.1 µM were used as controls. Amastigote growth was assessed 24 h after SZE treatment. The results from three experiments performed in duplicate are shown as the percentage of amastigotes killing ± SEM compared with an untreated control (CTRL); *** p < 0.0001 compared with controls.

Leishmanicidal Activity of Atomaric Acid (ATA) and Its Methyl Ester Derivative (AAE)
To identify the anti-leishmanial active compounds in SZE, we first tested ATA, the major compound present in this extract, along with its derivative AAE on the proliferation of L. amazonensis ( Figure 5). ATA and AAE at 50 µM inhibited promastigote growth by up to 86% and 100%, respectively, after three days with only a single treatment.

Leishmanicidal Activity of Atomaric Acid (ATA) and Its Methyl Ester Derivative (AAE)
To identify the anti-leishmanial active compounds in SZE, we first tested ATA, the major compound present in this extract, along with its derivative AAE on the proliferation of L. amazonensis ( Figure 5). ATA and AAE at 50 μM inhibited promastigote growth by up to 86% and 100%, respectively, after three days with only a single treatment. To test the safety of ATA and AAE on host cells, we evaluated the dehydrogenase activity of macrophages using the XTT method. We found that treatment of macrophages with ATA or AAE only affected dehydrogenase activities at high concentrations ( Figure 6A,B). ATA was cytotoxic for macrophages at 300 μM, affecting 64.5% of cells viability, while AAE at 200 μM affected the viability of 60% of macrophages. The CC50 values for macrophages treated with ATA and AAE were 169.5 μM (75 μg/mL) and 262.5 μM (209 μg/mL), respectively (Table 1).
To evaluate the anti-amastigote activity of ATA and AAE, we treated infected macrophages with these compounds. We found that a 24 h treatment with ATA at 0.1, 1, 10, and 100 μM killed 17%, 26%, 36%, and 52% of amastigotes, respectively ( Figure 7A). AAE administered at the same concentrations killed 20%, 30%, 36%, and 62% of the amastigotes ( Figure 7B). The IC50 values of ATA and AAE were 20 μM (9 μg/mL) and 23 μM (10 μg/mL), respectively (Table 1). To test the safety of ATA and AAE on host cells, we evaluated the dehydrogenase activity of macrophages using the XTT method. We found that treatment of macrophages with ATA or AAE only affected dehydrogenase activities at high concentrations ( Figure 6A,B). ATA was cytotoxic for macrophages at 300 µM, affecting 64.5% of cells viability, while AAE at 200 µM affected the viability of 60% of macrophages. The CC 50 values for macrophages treated with ATA and AAE were 169.5 µM (75 µg/mL) and 262.5 µM (209 µg/mL), respectively (Table 1).
As nitric oxide (NO) and reactive oxygen species (ROS) are potent leishmanicidal mediators, we studied whether ATA and AAE could modulate these effector molecules in macrophages to kill intracellular amastigotes. Treatment with ATA or AAE of uninfected macrophages that were stimulated or not with IFN-γ resulted in no significant changes in the production of NO ( Figure 8A,C). By contrast, infected macrophages stimulated with IFN-γ exhibited a 75% and 73% reduction in NO production after treatment with ATA and AAE at 100 μM, respectively ( Figure 8B,D).
By analyzing ROS production, we found that treatment of uninfected macrophages with 100 μM ATA increased ROS by 82% compared with untreated controls ( Figure 9A). Similar results were observed in macrophages treated with phorbol 12-myristate13-acetate (PMA), a classical ROS inducer ( Figure 9A). Evaluating infected macrophages, a similar increase was observed after treatment with 100 μM ATA compared with untreated controls, although infected macrophages were unable to respond to PMA stimulation ( Figure 9A). We also observed modulation of ROS levels in macrophages treated with AAE. Thus, treatment with 100 μM AAE increased ROS production by 62% and 31% in infected and uninfected macrophages, respectively ( Figure 9B). Both ATA and AAE reversed ROS inhibition induced by Leishmania after PMA treatment of infected macrophages, and increased ROS production 1.3-fold compared to infected macrophages treated with PMA alone (Figure 9A,B).   (21) The selectivity index (SI) is defined as the ratio of CC 50 on murine peritoneal macrophages to IC 50 on L. amazonensis intracellular amastigotes.   The selectivity index (SI) is defined as the ratio of CC50 on murine peritoneal macrophages to IC50 on L. amazonensis intracellular amastigotes.
As nitric oxide (NO) and reactive oxygen species (ROS) are potent leishmanicidal mediators, we studied whether ATA and AAE could modulate these effector molecules in macrophages to kill intracellular amastigotes. Treatment with ATA or AAE of uninfected macrophages that were stimulated or not with IFN-γ resulted in no significant changes in the production of NO ( Figure 8A,C). By contrast, infected macrophages stimulated with IFN-γ exhibited a 75% and 73% reduction in NO production after treatment with ATA and AAE at 100 μM, respectively ( Figure 8B,D).
By analyzing ROS production, we found that treatment of uninfected macrophages with 100 μM ATA increased ROS by 82% compared with untreated controls ( Figure 9A). Similar results were observed in macrophages treated with phorbol 12-myristate13-acetate (PMA), a classical ROS inducer ( Figure 9A). Evaluating infected macrophages, a similar increase was observed after treatment with 100 μM ATA compared with untreated controls, although infected macrophages were unable to respond to PMA stimulation ( Figure 9A). We also observed modulation of ROS levels in macrophages treated with AAE. Thus, treatment with 100 μM AAE increased ROS production by 62% As nitric oxide (NO) and reactive oxygen species (ROS) are potent leishmanicidal mediators, we studied whether ATA and AAE could modulate these effector molecules in macrophages to kill intracellular amastigotes. Treatment with ATA or AAE of uninfected macrophages that were stimulated or not with IFN-γ resulted in no significant changes in the production of NO ( Figure 8A,C). By contrast, infected macrophages stimulated with IFN-γ exhibited a 75% and 73% reduction in NO production after treatment with ATA and AAE at 100 µM, respectively ( Figure 8B,D).
By analyzing ROS production, we found that treatment of uninfected macrophages with 100 µM ATA increased ROS by 82% compared with untreated controls ( Figure 9A). Similar results were observed in macrophages treated with phorbol 12-myristate13-acetate (PMA), a classical ROS inducer ( Figure 9A). Evaluating infected macrophages, a similar increase was observed after treatment with 100 µM ATA compared with untreated controls, although infected macrophages were unable to respond to PMA stimulation ( Figure 9A). We also observed modulation of ROS levels in macrophages treated with AAE. Thus, treatment with 100 µM AAE increased ROS production by 62% and 31% in infected and uninfected macrophages, respectively ( Figure 9B). Both ATA and AAE reversed ROS inhibition induced by Leishmania after PMA treatment of infected macrophages, and increased ROS production 1.3-fold compared to infected macrophages treated with PMA alone (Figure 9A,B).

Discussion
In this present study, we showed a leishmanicidal activity of Stypopodium zonale extract (SZE) against Leishmania amazonensis, promastigotes, and intracellular amastigotes. SZE inhibited intracellular amastigotes growth in a time-and concentration-dependent manner.
Currently, anti-promastigote activity has been demonstrated for algae extracts from various other species, such as Caulerpa sertularioides, Gracillaria corticata, Gracillaria salicornia, and Sargassum oligocystum, which inhibited the growth of L. major promastigotes [28].
However, there are no previously published reports of algae extracts for activity against intracellular amastigotes, as only tests of axenic amastigotes have been reported. Our results showed that SZE could kill intracellular amastigotes with an IC 50 value of 0.27 µg/mL. Studies comparing the leishmanicidal activity of 32 algae species against axenic amastigotes reported that only four of those exhibited an IC 50 value below 20 µg/mL, which suggests that SZE is one of the most active extracts that has been previously studied [13][14][15]. These data added, along with the low toxicity of SZE for host cells, demonstrates its potential as a source of molecules for leishmanicidal drug development.
With an aim to identify the compounds responsible for the strong anti-leishmanial activity that we observed, SZE was fractionated and atomaric acid (ATA) was characterized as its major compound. This meroditerpene is a dominant compound in certain Stypopodium zonale populations [18], and it may be involved in important ecological interactions within the marine environment [27][28][29][30]. The biological activities of ATA have been previously reported [18,23,26], but its leishmanicidal activity was demonstrated for the first time in this present study. Herein, we also tested the methyl ester derivative of the atomaric acid (AAE), a semi-synthetic compound obtained by a usual chemical modification approach, to evaluate whether a less-polar version of ATA would show increased activity.
Similar to SZE, both ATA and AAE showed activity against the promastigotes and intracellular amastigotes of L. amazonensis, along with low toxicity for host cells. The anti-Leishmania activities of ATA and AAE were comparable, showing IC 50 values for intracellular amastigotes of 20 µM (9 µg/mL) and 23 µM (10 µg/mL), and selectivity indexes (SI) of 8.4 (8.3) and 11.5 (21), respectively, suggesting that derivatization of ATA could improve its activity by reducing its CC 50 by 2.8-fold. SZE was 33-and 37-fold more active than ATA and AAE, respectively. This difference likely resulted from the association of these major compounds with minor substances present in SZE, suggesting a possible synergism among these compounds.
The anti-leishmanial activity of substances isolated from algae has been previously reported for terpenes [14,16]. The halogenated sesquiterpenes, elatol and obtusol, which were isolated from the red alga Laurencia dendroidea, as well as the diterpene dolabelladienotriol obtained from the brown alga Dictyota pfaffii (Dictyotaceae), were active against the promastigote and amastigote forms of L. amazonensis. Here, our findings suggested an anti-leishmanial activity for two meroditerpenes, ATA, and its derivate AAE, establishing the robust leishmanicidal potential of algal terpenes.
We determined that ATA and AAE modulate macrophage activity by inhibiting NO production, which is an important mediator of Leishmania killing. ATA and AAE treatment reduced NO production in infected macrophages stimulated by IFN-γ. These data suggest that the Leishmania killing mediated by ATA and AAE occurred independently of NO production. Similarly, dolabelladienotriol, an algae-isolated substance with anti-amastigote activity, can also inhibit NO production [16]. In contrast to ATA and AAE, dolabelladienotriol can inhibit NO in both infected and uninfected macrophages that are stimulated or not with IFN-γ + LPS [16]. Recently, Kar and colleagues [31] showed that mouse splenocytes treated with fucoidan, a polysaccharide from the brown alga Fucus vesiculosus, increased ROS production and efficiently resolved L. donovani infection. The anti-amastigote activity of ATA and AAE could be explained at least in part because of the capacity of these molecules to stimulate ROS production in macrophages that are infected or not with Leishmania amazonensis.
Together, our present findings show that Stypopodium zonale is an interesting source of natural products for drug discovery and the development of novel anti-protozoal agents. Atomaric acid and its methyl ester derivative, which exhibit leishmanicidal activity in vitro, may represent an attractive and safe candidate source for the development of drugs for the treatment of cutaneous leishmaniasis.

Seaweed Sampling
The brown alga A voucher specimen was deposited at the herbarium of the Universidade Federal do Rio de Janeiro (RFA 3823). Algae were washed in seawater to eliminate associated organisms and then were air-dried.

Extract Preparation and Procedures for Obtaining Meroditerpene
Air-dried and powdered algal material (130.0 g dry weight) was successively extracted with dichloromethane (2 L × 3 times, at room temperature for three weeks). Solvent was removed by vacuum yielding 11.8 g lipophilic extract (SZE). The chemical profile of the major compounds in SZE was determined by 1 H NMR (nuclear magnetic resonance, 300 MHz) spectroscopy in a Bruker Advance spectrometer. SZE (2.5 g) was chromatographed on a SiO 2 flash column using an n-hexane-ethyl acetate (EtOAc) and methanol (MeOH) step gradient system; 20 fractions (F1-F20) were obtained. All fractions, i.e., F1-F20, were analyzed by thin layer chromatography using Kieselgel 60 F 254 aluminum support plates (Merck, Rio de Janeiro, RJ, Brazil). Fraction F4 (0.152 g), which contained the major compound in SZE, was eluted with 20% EtOAc in n-hexane, re-chromatographed on a SiO 2 column with 25% EtOAc in n-hexane and, finally, 0.0036 g of the meroditerpenoid atomaric acid (ATA) was isolated.

Preparation of the Methyl Ester of Atomaric Acid (AAE)
To evaluate possible structural modifications on S. zonale compounds for effects on anti-leishmanial activity, the methyl ester of atomaric acid (AAE) was obtained after a methylation reaction of the extract. Briefly, 1.0 g of SZE was dissolved in a mixture of CHCl 3 -MeOH (4:1) and fresh diazomethane (CH 2 N 2 ) in an excess of ethyl ether solution. After overnight magnetic stirring of the mixture, it was fractionated by silica gel vacuum liquid chromatography and eluted with increasing amounts of EtOAc in n-hexane. From the 12 fractions (F1-F12) that were obtained, F2 (0.2470 g) was chromatographed in a silica gel column and eluted with 15% EtOAc in n-hexane to yield 0.1360 g purified AAE.

Structural Elucidation
Chemical structures of the purified compounds were established by a comparison of previously reported 1 H NMR, 13 C NMR, mass spectrometry, and infrared spectroscopy data [22,23], and meroditerpenes, atomaric acid (ATA), and its methyl ester derivative (AAE) were identified (Figure 1).

Ethics Statement
All animal experiments were performed in strict accordance with the Brazilian animal protection law (Lei Arouca number 11.794/08) of the National Council for the Control of Animal Experimentation (CONCEA, Rio de Janeiro, Brazil). The study protocol was approved by the Committee for Animal

Anti-Promastigote Activity
The leishmanicidal properties of SZE, ATA, and AAE were evaluated by measuring promastigote viability. Stationary-phase promastigotes were treated with different concentrations of SZE, ATA, or AAE, and parasite survival was estimated by counting viable/motile forms in a hematocytometer during five days of culture at 26 • C. Data are expressed as the number of live parasites. As controls, promastigotes were maintained in culture medium and treated with the vehicle, dimethyl sulfoxide (DMSO; Sigma, St. Louis, MO, USA).

Anti-Amastigote Activity
Mouse peritoneal macrophages obtained after stimulation with 3% thioglycolate for three days were harvested in RPMI 1640 medium (LGC Biotec, Cotia, SP, Brazil) and cultured in 24-well plates for 2 h until they were adherent at 35 • C, 5% CO 2 . Non-adherent cells were removed, and macrophages were incubated overnight, as above, in RPMI with 10% FCS. Adherent macrophages were infected with L. amazonensis promastigotes (stationary growth phase) at a 10:1 parasite/macrophage ratio for 1 h at 35 • C, 5% CO 2 . Free parasites were washed out with 0.01 M phosphate buffered saline (PBS), and cultures were maintained as above for 24 h at 35 • C, 5% CO 2 . Infected macrophage cultures were treated with different concentrations of SZE, ATA, or AAE for an additional 24 h at 35 • C, 5% CO 2 . The cultures were then washed in PBS, fixed and stained with Giemsa. The number of amastigotes per macrophage and the percentage of infected macrophages were determined by counting at least 200 cells in triplicate cultures. Infectivity index was obtained by multiplying the percentage of infected macrophages by the mean number of amastigotes per infected macrophage. Amphotericin B used as a positive control was from Cristália (Itapira, SP, Brazil). The results were expressed as the percentage of killing compared with untreated controls.

Nitric Oxide Production
Thioglycolate-stimulated peritoneal macrophages were obtained as described above (at 10 6 cells/well in 24-well plates) and were either activated with 200 ng/mL IFN-γ (eBioscience, San Diego, CA, USA) or left untreated. After incubation for 24 h at 35 • C, 5% CO 2 , cells were treated with 100 µM ATA or AAE. Nitrite concentrations in culture supernatants were determined using the Griess method. The reaction was read at 540 nm, and the concentration of NO 2 − was determined based on a standard curve of sodium nitrite. Data were expressed as the micromolar concentrations of nitrite [33].

Detection of Reactive Oxygen Species (ROS)
Mouse peritoneal macrophages that adhered to 96-well opaque culture plates were infected or not with L. amazonensis promastigotes. At 24 h post-infection, cultures were treated with 100 µM ATA or AAE and stimulated or not with 1 µg/mL phorbol 12-myristate13-acetate (PMA, Sigma). Cells were stained with 50 µM dihydrorhodamine 123 (DHR 123, Life Technologies, Waltham, MA, USA), and ROS was measured immediately using 500/526 nm excitation/emission wavelengths.