Taurine represses age‐associated gut hyperplasia in Drosophila via counteracting endoplasmic reticulum stress

Abstract As they age, adult stem cells become more prone to functional decline, which is responsible for aging‐associated tissue degeneration and diseases. One goal of aging research is to identify drugs that can repair age‐associated tissue degeneration. Multiple organ development‐related signaling pathways have recently been demonstrated to have functions in tissue homeostasis and aging process. Therefore, in this study, we tested several chemicals that are essential for organ development to assess their ability to delay intestinal stem cell (ISC) aging and promote gut function in adult Drosophila. We found that taurine, a free amino acid that supports neurological development and tissue metabolism in humans, represses ISC hyperproliferation and restrains the intestinal functional decline seen in aged animals. We found that taurine represses age‐associated ISC hyperproliferation through a mechanism that eliminated endoplasmic reticulum (ER) stress by upregulation of the target genes of unfolded protein response in the ER (UPRER) and inhibiting the c‐Jun N‐terminal kinase (JNK) signaling. Our findings show that taurine plays a critical role in delaying the aging process in stem cells and suggest that it may be used as a natural compound for the treatment of age‐associated, or damage‐induced intestinal dysfunction in humans.


| INTRODUC TI ON
The aging process is characterized by a progressive decline in the normal functions of tissues and organs (Lopez-Otin et al., 2013), making individuals much more sensitive to diverse stimuli, such as pathogens, toxins, and chemical or mechanical injury (Deleidi et al., 2015), and leading to an increased vulnerability to disease and death.
In recent years, numerous biologic phenomena have been linked to the aging process, including stem cell exhaustion, which is regarded as one of the most important hallmarks of organismal aging (Lopez-Otin et al., 2013). Many studies have demonstrated that adult stem cells exhibit dysfunction or exhaustion during aging (Ambrosi et al., 2017). When stem cells are forced to activate repeatedly, they can become exhausted and eventually fail to accomplish tissue turnover (Haller et al., 2017). When adult stem cells can avoid aging-related exhaustion, the functional decline of organs can be significantly delayed (Gervais & Bardin, 2017). Preventing stem cell exhaustion is therefore a promising area of anti-aging research; however, the underlying mechanisms of aging-related functional decline in adult stem cells remain unclear due to the complexity of the stem cell niche, and the highly dynamic nature of the external environment.
Identifying small molecular compounds that can improve stem cell function will not only yield drugs that can be used to promote healthy aging but can also shed light on the mechanisms involved in stem cell exhaustion.
To date, the underlying mechanisms affecting organismal development have been, to a large extent, uncovered. Intriguingly, recent studies have shown that many of the signaling pathways that regulate organ development also play important roles in the maintenance of tissue homeostasis and/or the aging-associated functional decline of organs (Campisi et al., 2019). This indicates that aging shares, at least in part, similar mechanisms with organismal development.
Therefore, it will be of great interest to determine whether essential nutrients that have been reported to modulate these signaling pathways and promote organ development can also exhibit anti-aging effects.
In mammals, taurine is a conditionally essential beta-amino acid derived from cysteine which needs to be supplemented by dietary sources (Ripps & Shen, 2012). It has been reported that taurine is crucial for multiple organ development (Rera et al., 2012). Recent studies have revealed that taurine can be used to treat aging-associated diseases in the heart, skin, skeletal muscle, and liver (Miyazaki & Matsuzaki, 2014). Based on these studies, we postulate that taurine may also regulate adult stem cell functions. Taurine administration has already been reported to significantly stimulate neural stem cell proliferation and differentiation ; however, it remains unclear whether taurine can play a role in preventing stem cell exhaustion and thus has an anti-aging effect.
The Drosophila midgut is a widely used model system to study stem cell function because of its simple cellular components and the wide array of tools that exist for genetic manipulation in Drosophila midgut. It can be used to identify potential strategies to enhance the regenerative capacity of adult stem cells and to uncover the underlying mechanisms of stem cell exhaustion and any anti-aging effects.

Drosophila intestinal stem cells (ISCs) expressing Notch ligand Delta
(Dl) and transcription factor Escargot (Esg) reside in the basement membrane of the digestive tract (Miguel-Aliaga et al., 2018). ISCs are responsible for the rapid turnover of the midgut epithelium and divide to self-renew or differentiate into progenitor cells (either enteroblasts (EBs) or enteroendocrine mother cells (EMCs), depending on Notch activity), which will further differentiate into absorptive enterocytes (ECs) or enteroendocrine cells (EEs) (Figure 1a). The number of stem and progenitor cells is relatively small and is stable in young and homeostatic midguts but increases sharply during aging (Biteau et al., 2008). Several signaling pathways, such as c-Jun N-terminal kinase (JNK) (Biteau et al., 2008), mTOR (Johnson et al., 2013), and ROS , are involved in these agingassociated alterations. These signaling pathways affect the precise division and differentiation of ISCs and their dysregulation could disrupt the intestinal barrier and the acid-base balance of the digestive tract (Li et al., 2016). Recent studies have revealed that preventing ISC hyperproliferation (either by genetic manipulation or drug administration) can significantly increase Drosophila lifespan (Gervais & Bardin, 2017;. Therefore, Drosophila midgut is an ideal model for us to use in this study to examine whether taurine affects stem cell behavior and aging. In this study, we show that taurine supplementation can attenuate age-associated hyperplasia in the Drosophila intestine and promote activation of the unfolded protein response in the endoplasmic reticulum (UPR ER ) in intestinal stem cells and subsequently suppresses JNK signaling and ISC hyperproliferation. Our findings provide new insights into the underlying mechanisms influencing stem cell aging and a potential anti-aging therapy.

| Taurine supplementation represses the elevated ISC hyperproliferation seen in aged Drosophila
In Drosophila midguts, ISC proliferation rate markedly increases upon aging (Choi et al., 2008;Cui et al., 2019) as shown by the continuous accumulation of escargot (esg)-positive (esg + ) cells (ISCs and EBs) and Phospho-Histone 3-positive (pH3 + ) cells (pH3 only stains mitotic cells (ISCs) in Drosophila midguts). Recent studies have shown that many organ development-related signaling pathways can regulate tissue homeostasis and aging (Choi et al., 2008;Cui et al., 2019). We, therefore, want to test whether some small molecule compounds that are essential for organ F I G U R E 1 Taurine supplementation represses ISC hyperproliferation in aged Drosophila. (a) Schematic diagram of cell types and markers in the Drosophila midgut. (b) A representative schematic of the Drosophila "esg > luciferase" reporter system. (c) Quantification of luciferase activity of midguts of 14-, 25-, and 40-day flies with or without taurine supplementation. Error bars show the standard deviation (SD) of six independent experiments. (d-g) Midguts were dissected at 14, 25, 40, and 40 days with taurine treatment and stained with Dl (red; ISC marker), and esg-GFP (green; EB and ISC marker). (h, i) The average numbers of esg-GFP + , Dl + , and pH3 + cells are significantly lower in 40-day midguts after taurine supplementation. (j) Quantification of the content of taurine in midguts of 14-day, 40-day, and 40-day flies fed with taurine using LC-ESI-MS/MS. Error bars indicate the SD of three independent experiments. (k, i) LC-MS chromatograms of taurine in midguts of 14-day (k) and 40-day (i) flies. Data information: Scale bars represent 10 µm. DAPI-stained nuclei are shown in blue. Error bars represent SDs. Student's t tests, *p < 0.05, **p < 0.01, ***p < 0.001, ****p < 0.0001. non-significance (NS) represents p > 0.05. See also Figure S1 development can prevent aging-related ISC hyperproliferation in Drosophila midguts using an "esg-luciferase" reporter system ( Figure 1b) which allows real-time tracking and quantification of changes in esg + cells.
We found that taurine (a conditionally essential amino acid that can be synthesized in the body and obtained from the diet) significantly repressed the accumulation of esg + cells in aged flies  Figure S1a). The mitotic rate indicated by pH3 staining also showed that taurine supplementation significantly repressed aging-associated ISC hyperproliferation in Drosophila ( Figure 1i, Figure S1b). It is important to notice that we found excess taurine consumption did not bring more benefit for anti-ISC-Aging but could be harmful to the fly health ( Figure 1c, Figure S1d-f).

| Taurine abundance decreases in the midguts of aged flies
Although it can be synthesized from cysteine, diet is the major source of taurine for animals (Luo et al., 2019). To ensure proper organ development, individuals need extra taurine from the daily diet (Jung & Choi, 2019). Previous studies have reported that several diseases, including diabetes, heart failure, muscle and inflammatory diseases, and metabolic diseases, are associated with taurine deficiency (Schaffer & Kim, 2018;Stacchiotti et al., 2018). However, whether taurine deficiency also occurs during intestinal aging remains unknown. Liquid chromatography-electrospray ionizationmass spectrometry (LC-ESI-MS/MS) analyses were performed to measure taurine abundance in the midgut of flies of a range of ages.
These data indicated that taurine levels in the midguts of older flies were lower than those of younger flies (Figure 1j-l and Figure S1 gh). Supplementation of taurine can effectively increase the levels of taurine in the midguts of aged flies (Figure 1j and Figure S1i). This suggests that the decrease of taurine may contribute to the functional decline of ISCs.

| Taurine administration prevents stimulusinduced midgut hyperplasia
Accumulation of environmental stress-induced damages is widely considered to be one of the main causes of organismal aging (Lavretsky & Newhouse, 2012;Luo et al., 2020). As aged midguts suffer hyperplasia caused by ISC hyperproliferation, so too do the midguts of young flies when exposed to extracellular stimuli such as oxidizing agents, noxious pathogens, and poisoned foods (Buchon et al., 2009;Hochmuth et al., 2011). We found that taurine supplementation significantly prevented ISC over-proliferation induced by bleomycin (BLM; causes DNA breaks and genomic instability) and

| Taurine supplementation prevents the agingassociated decline of intestinal functions in Drosophila
Previous studies have shown that aging-associated ISC hyperproliferation in Drosophila leads to a remarkable decline in midgut digestive functions, including a decline in both food intake and excretion, and the loss of gastrointestinal acid-base homeostasis (Deshpande et al., 2014;Li et al., 2016). Since taurine supplementation can prevent ISC hyperproliferation in aged flies, we wanted F I G U R E 2 Taurine supplementation prevents stimulus-induced midgut hyperplasia. (a-h) Immunofluorescence images of midguts with esg-GFP and Dl staining for Mock (a), Taurine(b), BLM (c), Taurine with BLM (d), ECC15 (e), Taurine with ECC15 (f), PQ (g), and Taurine with PQ (h). Mock represents 14-day midguts without Taurine, BLM, Ecc15, or PQ treatment. esg-GFP (green) was used to visualize ISCs and non-dividing enteroblasts (EBs). Dl staining (red) identifies ISCs. (i, j) The average number of esg-GFP + and Dl + (j), pH3 + (i) cells after injury by BLM, ECC15, and PQ, with or without taurine supplementation. (k) Quantification of the luciferase activity of midguts of Mock, Taurine, BLM, BLM with taurine, ECC15, ECC15 with taurine, PQ, and PQ with taurine. Data show six independent experiments. (l, m) Survival percentage of flies with and without taurine supplementation under PQ (l) or ECC15 (m) treatments. 3 independent experiments were conducted. Data information: DAPI stained nuclei are shown in blue. Error bars represent SDs. Scale bars represent 10 µm. For analysis of the statistical significance of differences between two groups, two-tailed unpaired Student's t tests were used. For the survival test, the logrank test was used to analyze the statistical significance. *p < 0.05, **p < 0.01, ***p < 0.001, ****p < 0.0001. non-significance (NS) represents p > 0.05 to investigate whether it also retards the decline of intestinal func-

| Taurine supplementation induces the activation of the UPR ER target genes in the midguts of aged Drosophila
To identify the mechanisms by which taurine prevent ISC hyperproliferation in old flies, we performed RNA sequencing (RNAseq) on dissected midguts of flies both with and without taurine supplementation (Table S1). The results of the RNA-seq analyses showed that a cluster of the UPR ER target genes (including Wbl,Hsp70Bbb,Hsp70Ab,Hsp70Bb,Hsp68,Hsp70Bc,Hsp70Ba, and Hsp70Aa) had significantly higher expression levels in the aged midguts (40 days) of Drosophila supplemented with taurine compared with those without (Figure 4a, Figure S4c, and Table   S2). Kyoto encyclopedia of genes and genomes (KEGG) pathway enrichment analysis of differentially expressed genes, which were only upregulated in old midguts of Drosophila given taurine, showed significant enrichment of genes involved in protein processing in the endoplasmic reticulum (ER) (genes in this term mainly play roles in the regulation of ER stress) ( Figure S4a,c, and Table S2). The UPR ER is a cellular stress response that is triggered by the ER stress (which occurs when the capacity of the ER to fold proteins becomes overburdened, resulting in the accumulation of unfolded or misfolded proteins) (Hetz, 2012). To counter ER stress, the UPR ER target genes are activated by the UPR ER to reduce the unfolded protein load partially through inducing expression of several stress-responsive chaperones, such as HSP70, HSP27, and HSP90 (Salminen & Kaarniranta, 2010). The UPR ER has been reported to play a key role in regulating aging-associated ISC hyperproliferation (Hetz, 2012;Wang, Zhu, et al., 2015), and based on these previous studies and current results, we predict that taurine prevents aging-associated gut hyperplasia via a mechanism that mediated by the UPR ER target genes.
To confirm the results of our RNA-seq analyses, esg-GFP + cells were sorted to eliminate the interference from other intestinal cell types ( Figure S4d) and quantitative reverse transcription-PCR (qRT-PCR) analyses were performed on these sorted cells. The qRT-PCR analyses of selected UPR ER target genes (Wbl,Hsp70,and Hsp68) showed similar expression patterns to the RNA-seq analysis ( Figure   S4b). Furthermore, immunostaining of Xbp1-GFP (a reporter for ER stress) and Phosphorylated eIF2α (p-eIF2α, a widely used biomarker for indicating the status of the ER stress in cells (Rath et al., 2012)) was also significantly downregulated in the ISCs of flies fed with taurine ( Figure 4b-g). These findings suggest that taurine probably prevents ISC aging through counteracting ER stress (which was eliminated by the upregulation of the UPR ER target genes) in ISCs of aged flies with taurine treatment.

| Taurine prevents ISC aging by eliminating ER stress
Recent studies have shown that the UPR ER plays a central role in regulating intestinal homeostasis in aging organisms (Hetz & Saxena, 2017;Wang et al., 2014;Wang, Zhu, et al., 2015). We found that the increase of esg-GFP + cells, Dl + cells, and pH3 + cells in old midguts was significantly inhibited by eliminating ER stress in aged Drosophila (by overexpressing Ero1L or depleting of PEK; Ero1L and PEK are two key regulators of the ER stress in Drosophila Since the ER stress increases during aging (Salminen & Kaarniranta, 2010), we wanted to mimic this condition in young F I G U R E 3 Taurine prevents the age-related functional decline of the Drosophila intestine. (a) Representative imagines and quantification of the percentage of intestinal acid-base homeostasis in flies at 14th and 40th day, with and without taurine. N = 90 flies per group. (b) Food intake of flies measured using the CAFÉ assay. Mean ± SD is shown. Error bars show the SD of three independent experiments. (c) Excretion from flies was treated with Bromophenol blue. Representative imagines of deposits and quantification of deposits with indicated treatment are shown. Each sample contains three independent experiments. Excretions are quantified for 30 fields in each group of 12 flies. (d) Measurements of solid food intake in Drosophila are shown. Flies of 14-day, 40-day, and 40-day with Taurine supplementation were subjected to solid food in the presence of blue dye. Blue dye was extracted and quantified via spectrophotometry. Data presented as mean + SD, from 6 separate experiments. (e) Representative images and quantification of the percentage of "Smurf" flies from 14-day, 40-day, and 40-day with Taurine supplementation after consuming a non-absorbed food dye. Each sample contains three independent experiments. (f-g) Survival curves (%) of female (f) and male (i) W 1118 flies with and without 0.05 mM of taurine supplementation. 3 independent experiments were conducted. (h-i) Survival curves (%) of female (h) and male (i) Canton-S flies with and without 0.05 mM of taurine supplementation. 3 independent experiments were conducted. Data information: Scale bars represent 10 µm. DAPI-stained nuclei are shown in blue. Error bars represent SDs. Student's t tests, *p < 0.05, **p < 0.01, ***p < 0.001, ****p < 0.0001. non-significance (NS) represents p > 0.05 | 9 of 16 DU et al.
flies by depleting Xbp1 (a UPR ER sensor (Wang, Zhu, et al., 2015;Wang et al., 2014)) or Ero1L (Wang, Zhu, et al., 2015) in ISCs to further explore the functional relationship between taurine and ER stress. As expected, the number of esg-GFP + cells, Dl + cells, and pH3 + cells in young (14-day-old) midguts significantly increased and the lifespan dramatically decreased when Xbp1 (Figure 5d

| Taurine prevents ISC hyperproliferation by counteracting ER stress-associated JNK activity
It has been reported that the UPR ER target genes eliminate ER stress to suppresses ISC over-proliferation by suppressing JNK signaling  (Figure 6k-m). These results indicate that JNK functions downstream of taurine in regulating ISC homeostasis and suggests, therefore, that taurine prevents ISC aging by counteracting UPR ERassociated JNK activity.

| DISCUSS ION
Although taurine, a conditionally essential amino acid, has been used to treat several aging-associated diseases (Miyazaki & Matsuzaki, 2014), the underlying mechanism of taurine's role in anti-aging remains largely unexplored. In this study, we showed that taurine abundance significantly decreases during aging and that in aged flies, taurine supplementation activates the UPR ER target genes to eliminate ER stress in ISCs, retards midgut dysplasia, and promotes a healthy lifespan (Figure 6n).

Over the years, studies have shown taurine's various functions
and mechanisms of action in organ development and it is essential for the development of the cardiovascular system, retina, and central nervous system (Wu, 2020). Other studies have shown that some nutrients for organ growth and development may also regulate organ aging, suggesting that there are common points between development and aging . Precise regulation of stem cell proliferation and differentiation is critical for organ development, and the dysregulation seen during aging is likely to result in malignant outcomes, including cancer. This study has shown that taurine, which is necessary for organ development, is also involved in the functional decline of stem cells in response to aging.
Bleomycin (BLM, causes DNA breaks and genomic instability) (Resende et al., 2017), Erwinia carotovora (ECC15, triggers a systemic immune response) (Ayyaz et al., 2015), and paraquat (PQ, induces oxidative stress) (Ayyaz et al., 2015) have been widely used to induce acute and chronic damage in Drosophila midguts, and simulate the environmental toxins that accelerate the aging process of Drosophila.
In this study, we showed that taurine supplementation prevented the stimulus (BLM, ECC15, or PQ)-induced midgut hyperplasia and increased the survival rate of flies under chronic damage (induced by continuously feeding with ECC15 and PQ). This suggests that taurine increases fly tolerance to noxious environmental stimuli. However, since oral administration of these toxins can cause systemic insults and taurine is also known to function beyond the intestine, we could not rule out the possibility that taurine supplementation might also benefit other tissues and cells increase the survival rate of flies under these chronic damages. Moreover, we should keep in F I G U R E 4 Taurine prevents ISC aging by promoting the upregulation of UPR ER target genes. (a) Volcano plots of differentially expressed genes compared between 40-day Drosophila with and without 0.05 mM taurine supplementation. Red symbols indicate significantly upregulated genes (Log2 FC > 0.6 and p < 0.05). Blue symbols indicate significantly downregulated genes. Gray symbols indicate genes that did not change significantly. The UPR ER target genes attenuate endoplasmic reticulum (ER) stress caused by the accumulation of unfolded/misfolded proteins in the ER. Activation of the UPR ER target genes is one of the strategies by which cells settle cellular metabolic error or environmental stimuli. The UPR ER has been shown to regulate multiple cellular functions, including stem cell behavior (Guallar et al., 2020;Sigurdsson & Miharada, 2018;Tavasolian et al., 2020), and is emerging as a critical regulator of intestinal epithelium homeostasis (Wang, Zhu, et al., 2015). Recent studies in mice indicate that the UPR ER may directly influence the gut regenerative process (Ma et al., 2017;Rosekrans et al., 2015) and in flies, it can modulate intestinal dysplasia in aged intestinal epithelium marked by excessive ISC proliferation (Wang, Zhu, et al., 2015). However, the underlying mechanisms of the UPR ER regulation in ISC aging remain largely unexplored. This study demonstrates that taurine supplementation promotes the expression of UPR ER target genes in ISCs which subsequently suppresses the JNK signaling pathway and has a protective role in ISC function and homeostasis. It is reasonable to presume that taurine may regulate other pathways that influence ISC aging and further studies are needed to uncover the details of how taurine modulates the expression of UPR ER target genes during aging.

| Contact for reagent and resource sharing
Requests for further information, reagents, and resources should be directed to and will be fulfilled by the Lead Contact, Haiyang Chen (Chenhy82@scu.edu.cn).

| Drosophila stocks and husbandry
Drosophila stocks were maintained at 25°C and fed with standard cornmeal fly food (for 1 L food: cornmeal 50 g, yeast 18.75 g, sucrose 80 g, glucose 20 g, agar 5 g, and propionic acid 30 mL). Adult UAS-mediated gene knockdown or overexpression was accomplished through crossing with the GAL4 lines in combination with the GAL80 ts transgene at 18°C. The progeny were maintained at 29°C for indicated days to induce transgene expression. All flies used in this experiment were mated females. Drosophila lines used in this study are listed in Table S3.

| Midgut dissection for RNA-Seq
The midguts of adult flies were dissected in PBS by removing the foreguts, hindguts, Malpighian tubules, and trachea. Every sample contained at least 50 female midguts. Total RNA of midguts was prepared with TRIzol reagent (Invitrogen). Novaseq 6000 platform (Illumina, San Diego, US) and 150 bp paired ends were used to do the sequencing. 20 million reads per sample were obtained.
Low-quality reads and adapter sequences were filtered out using Trimmomatic (v 0.39), and quality control were performed using FastQC (v0.11.8, http://www.bioin forma tics.babra ham.ac.uk/proje cts/fastq c/). Gene expression differences were analyzed using an R package (DESeq2), and KEGG pathway analysis was used to analyze the associated pathways.

| FACS and qRT-PCR
Each pooled sample contained midguts from a total of 100 mated females. These midguts were dissected and incubated with Elastase

| Immunofluorescence and microscopy
Female midguts were dissected and fixed with 4% EM-grade paraformaldehyde fixation buffer (100 mM glutamic acid, 25 mM KCl, 20 mM MgSO4, 4 mM Na 2 HPO 4 , 1 mM MgCl 2 , pH 7.4) for 1 h at room temperature. The midguts were then washed with PBST (PBS plus 0.3% Triton X-100) for 3 times, 10 min each, blocked with 5% BSA (in PBST buffer) for 30 min and incubated with primary antibody (dissolve in PBST buffer) at 4°C overnight. Then, they were washed and incubated with corresponding secondary antibodies and DAPI for 2 h at room temperature. The primary antibodies used are listed in the Reagent Table (Table S4). All images were obtained using a Leica TCS-SP8 confocal microscope. Adobe Photoshop and Adobe Illustrator were used to assemble the images.

| Luciferase assays
The Firefly Luciferase Reporter Gene Assay Kit (Beyotime Biotechnology, Jiangsu, China, RG051S) was used to measure luciferase activity. Each sample contained about 15 female midguts and was immediately frozen with liquid nitrogen. To each sample, 50 µl of the Luciferase Reporter Gene Assay Lysis Buffer was added and the sample was homogenized. Extracts were obtained by centrifugation at 13,000 g for 10 min at 4°C. Luciferase activity was measured according to the manufacturer's instructions.

| Bromophenol blue assay
The bromophenol blue assay was used to detect the pH change in the midgut as previously described (Li et al., 2016). Briefly, 100 µl of 2% Bromophenol blue sodium (Sigma, B5525) was added to the food surface and several holes were poked to allow the Bromophenol blue solution completely absorbed by the food. Images were taken immediately after 12 h.

| Cafe assay and fly excretion measurements
The Café and excretion measurements were performed as previously described (Deshpande et al., 2014). Briefly, two capillaries (53432-706, VWR) containing 5 μl of liquid food were used and food consumption-ability was calculated from volume reduction.
To rule out the possibility that taurine affects the food preference or food intake behavior of Drosophila, we designed one kind of modified Drosophila vials (each of these vials contains 6 liquid foodcontained capillaries, 3 with taurine, and 3 without taurine, see the cartoon in Figure S3b) where flies can freely choose taking or not taking taurine-contained liquid food.

| Solid food intake measurements
The solid food intake measurements were performed as previously described (Shell et al., 2018). Briefly, an agar-based food medium containing Blue 1 (FD and C Blue No. 1,Spectrum Chemical Manufacturing Corp,FD110)

| "Smurf" assay
The "Smurf" assays were performed as previously described (Rera et al., 2011(Rera et al., , 2012. Briefly, the medium of Blue dye no. 1 (FD and C Blue No. 1, Spectrum Chemical Manufacturing Corp, FD110) was prepared using the standard medium with dyes added at a concentration of 2.5% (wt/vol). Flies (20/vail) were maintained on Blue dye F I G U R E 6 Taurine prevents ISC hyperproliferation by counteracting ER stress-associated JNK activity. (a-c) Immunofluorescence imagines of pJNK (red) and esg-GFP (green) staining of 14-day flies, 40-day flies, and 40-day flies with taurine supplementation. Red arrows indicate pJNK-positive cells. (d) Quantitation of pJNK intensity in esg-positive cells from flies of 140-day, 40-day, and 40-day with taurine supplementation. Each dot corresponds to one cell. (e-g) Immunofluorescence images of midguts of 40-day flies with indicated genotypes and treatment, staining with esg-GFP (green), Dl (red). (h, i) Quantification of the mean numbers of esg-GFP + , Dl + , and pH3 + cells of flies with indicated genotypes and treatment. (j) Quantification of luciferase activity of midguts of flies with indicated genotypes and treatment. n indicates six independent experiments. (k, l) Quantification of the mean numbers of esg-GFP + , Dl + , and pH3 + cells of flies with indicated genotypes and treatment. (m) Quantification of the luciferase activity in midguts with indicated genotypes and treatment. Error bars show the standard deviation (SD) of six independent experiments. (n) Schematic model of the mechanism. Taurine activates the UPR ER target genes in ISCs, which in turn attenuates ER stress, prevents the over-activation of JNK signaling, and inhibits the hyperproliferation of ISCs. Data information: Scale bars represent 10 µm. DAPI-stained nuclei are shown in blue. Error bars represent SDs. Student's t tests, ****p < 0.0001. non-significance(NS) represents p > 0.05 no. 1 medium. After 9 h, the fly was counted as a Smurf when the coloration of Blue dye no. 1 could be observed outside of the digestive tract.

| Taurine, Paraquat, Bleomycin, and ECC15 treatment
Taurine was dissolved in DMSO and mixed with regular food medium. Female flies were collected no more than 3 days after eclosion and distributed equally into vials containing taurine mixed food. The control food was mixed with an equal volume of DMSO.
Chromatography paper was cut into 3.7 × 5.8 cm strips and saturated with 10 mM paraquat (Aladdin, M106760) or 25 µg/ml bleomycin (Aladdin, B107423). For ECC15 treatment, a concentrated bacterial pellet was centrifuged from overnight culture media and was dissolved in 1 ml 5% sucrose (to make the final OD 600 = 200). Before treatment, flies were starved in empty vials for 1 h and transferred into vials with paraquat, bleomycin, or ECC15 saturated paper. After 24 h of treatment, flies were transferred daily to new vials with paraquat, bleomycin, or ECC15. And 5% (wt/vol) sucrose without those drugs was used as controls.

| Lifespan assays under normal and stressful conditions
For survival tests under normal conditions, 100 female or male unmated flies (1-to 2-day-old) of the same genetic background were collected and distributed equally into four vials with regular food medium with or without taurine medium supplementation. Flies that were still alive were counted every 2 days. The viability tests were repeated as three independent experiments.
For survival tests under stressful conditions, flies were divided into four groups which are paraquat (20 mM) group, paraquat (20 mM) added taurine group, ECC15 (OD 600 = 200) group, and ECC15 (OD 600 = 200) added taurine group. For each group, 100 female flies (1-to 2-day-old) of the same genetic background were collected and distributed equally into four vials. At the same time, 10 male flies (1-to 2-day-old) were added to each vial to ensure that the females were mated. Female flies that were still alive were counted every day.

| Quantification and statistical analysis
GraphPad Prism v6.0 was used to evaluate statistical significance after verifying normality and equivalence of variances. For stem cell counts, means ± SD was displayed. Student's two-tailed t tests and log-rank test were performed. p < 0.05 was considered to be statistically significant. All experiments were repeated at least three times.

ACK N OWLED G M ENTS
We thank BDSC and Tsinghua Fly Center for fly strains, DSHB for antibodies. This work was supported by the National Key Basic

CO N FLI C T O F I NTE R E S T
The authors declare no competing interests.

O PE N R E S E A RCH BA D G E S
The RNA-seq data that support the findings of this study have been deposited in the Sequence Read Archive (SRA) under BioProject ID PRJNA644243 (https://www.ncbi.nlm.nih.gov/sra/?term=PRJNA 644243). Source data for Figure 4 have been provided as Supplementary Table S1 and Supplementary Table S2. RNA-seq data were analyzed using R software (version 3.5.3) obtained from https://www.r-proje ct.org/.

DATA AVA I L A B I L I T Y S TAT E M E N T
The authors declare that all data generated or analyzed during the current study are available from the corresponding author upon reasonable request.