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1.
ACS Synth Biol ; 13(8): 2391-2401, 2024 Aug 16.
Article in English | MEDLINE | ID: mdl-39038807

ABSTRACT

Phycobilisomes (PBSs) are light-harvesting antenna complexes in cyanobacteria that adapt to diverse light environments through the use of phycobiliproteins within the PBS structures. Freshwater cyanobacteria, such as Synechococcus elongatus PCC 7942, thrive under red light because of the presence of phycocyanin (PC) and its chromophore, phycocyanobilin (PCB), in the PBS. Cyanobacteria in shorter-wavelength light environments such as green light, employ phycoerythrin paired with phycoerythrobilin (PEB) along with PC in the PBS. Synthetic biology studies have shown that PEB production can be achieved by expression of the heterologous PEB synthases 15,16-dihydrobiliverdin:ferredoxin oxidoreductase (PebA) and PEB:ferredoxin oxidoreductase (PebB), leading to PEB accumulation and cellular browning. This approach is genetically unstable, and the properties of the resulting PEB-bound PBS complexes remain uncharacterized. In this study, we engineered a novel strain of Synechococcus 7942 PEB1 with finely tuned control of PEB biosynthesis. PEB1 exhibited a reversible change in the color of the culture from green to brown and pink based on PebA and PebB induction levels. High induction led to complete PCB-to-PEB substitution, causing the disassembly of the PBS rod complex. In contrast, low induction levels of PebA and PebB resulted in the formation of a stable chimeric PBS complex with partial PCB-to-PEB substitution. This acclimation enabled efficient light harvesting in the green spectrum and energy transfer to the photosynthetic reaction center. These findings, which improve our understanding of PBS and highlight the structural importance of the bilin composition, provide a foundation for future studies on PBS adaptation in bioengineering, synthetic biology, and renewable energy.


Subject(s)
Bacterial Proteins , Phycobiliproteins , Phycobilisomes , Phycocyanin , Synechococcus , Synechococcus/metabolism , Synechococcus/genetics , Phycobilisomes/metabolism , Phycobiliproteins/metabolism , Phycobiliproteins/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Phycocyanin/metabolism , Phycocyanin/genetics , Phycobilins/metabolism , Phycoerythrin/metabolism , Phycoerythrin/chemistry , Bile Pigments/metabolism , Light , Synthetic Biology/methods , Cyanobacteria/metabolism , Cyanobacteria/genetics
2.
J Am Chem Soc ; 146(31): 21913-21921, 2024 Aug 07.
Article in English | MEDLINE | ID: mdl-39058977

ABSTRACT

Cyanobacteria were the first microorganisms that released oxygen into the atmosphere billions of years ago. To do it safely under intense sunlight, they developed strategies that prevent photooxidation in the photosynthetic membrane, by regulating the light-harvesting activity of their antenna complexes-the phycobilisomes-via the orange-carotenoid protein (OCP). This water-soluble protein interacts with the phycobilisomes and triggers nonphotochemical quenching (NPQ), a mechanism that safely dissipates overexcitation in the membrane. To date, the mechanism of action of OCP in performing NPQ is unknown. In this work, we performed ultrafast spectroscopy on a minimal NPQ system composed of the active domain of OCP bound to the phycobilisome core. The use of this system allowed us to disentangle the signal of the carotenoid from that of the bilins. Our results demonstrate that the binding to the phycobilisomes modifies the structure of the ketocarotenoid associated with OCP. We show that this molecular switch activates NPQ, by enabling excitation-energy transfer from the antenna pigments to the ketocarotenoid.


Subject(s)
Bacterial Proteins , Carotenoids , Cyanobacteria , Phycobilisomes , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Carotenoids/chemistry , Carotenoids/metabolism , Cyanobacteria/metabolism , Cyanobacteria/chemistry , Phycobilisomes/chemistry , Phycobilisomes/metabolism , Bile Pigments/chemistry , Bile Pigments/metabolism , Photochemical Processes
3.
Sci Adv ; 10(24): eadn8386, 2024 Jun 14.
Article in English | MEDLINE | ID: mdl-38865454

ABSTRACT

Certain cyanobacteria alter their photosynthetic light absorption between green and red, a phenomenon called complementary chromatic acclimation. The acclimation is regulated by a cyanobacteriochrome-class photosensor that reversibly photoconverts between green-absorbing (Pg) and red-absorbing (Pr) states. Here, we elucidated the structural basis of the green/red photocycle. In the Pg state, the bilin chromophore adopted the extended C15-Z,anti structure within a hydrophobic pocket. Upon photoconversion to the Pr state, the bilin is isomerized to the cyclic C15-E,syn structure, forming a water channel in the pocket. The solvation/desolvation of the bilin causes changes in the protonation state and the stability of π-conjugation at the B ring, leading to a large absorption shift. These results advance our understanding of the enormous spectral diversity of the phytochrome superfamily.


Subject(s)
Light , Cyanobacteria/metabolism , Cyanobacteria/physiology , Acclimatization , Photosynthesis , Phytochrome/metabolism , Phytochrome/chemistry , Models, Molecular , Bile Pigments/metabolism , Bile Pigments/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Red Light
4.
J Phys Chem Lett ; 15(19): 5202-5207, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38717357

ABSTRACT

Far-red cyanobacteriochromes (CBCRs) are bilin-based photosensory proteins that promise to be novel optical agents in optogenetics and deep tissue imaging. Recent structural studies of a far-red CBCR 2551g3 have revealed a unique all-Z,syn chromophore conformation in the far-red-absorbing Pfr state. Understanding the photoswitching mechanism through bilin photoisomerization is important for developing novel biomedical applications. Here, we employ femtosecond spectroscopy and site-directed mutagenesis to systematically characterize the dynamics of wild-type 2551g3 and four critical mutants in the 15Z Pfr state. We captured local relaxations in several picoseconds and isomerization dynamics in hundreds of picoseconds. Most mutants exhibited faster local relaxation, while their twisting dynamics and photoproducts depend on specific protein-chromophore interactions around the D-ring and C-ring. These results collectively reveal a unique dynamic pattern of excited-state evolution arising from a relatively rigid protein environment, thereby elucidating the molecular mechanism of Pfr-state photoisomerization in far-red CBCRs.


Subject(s)
Bacterial Proteins , Isomerism , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Cyanobacteria/metabolism , Cyanobacteria/chemistry , Mutagenesis, Site-Directed , Photoreceptors, Microbial/chemistry , Photoreceptors, Microbial/metabolism , Bile Pigments/chemistry , Bile Pigments/metabolism
5.
World J Surg Oncol ; 22(1): 105, 2024 Apr 20.
Article in English | MEDLINE | ID: mdl-38643155

ABSTRACT

BACKGROUND: Biliary intraepithelial neoplasia (BilIN), a noninvasive precursor of cholangiocarcinoma, can manifest malignant transformation. Since cholangiocarcinoma (CCA) may progress due to chronic inflammation in the bile ducts and gallbladder, choledochal cysts are considered a precursor to CCA. However, BilIN has rarely been reported in children, to date. METHODS: We reviewed medical records of patients (< 18 years of age, n = 329) who underwent choledochal cyst excision at Asan Medical Center from 2008 to 2022. BilIN was diagnosed in 15 patients. Subsequent analyses were performed of the demographics, surgical procedures, clinical course, and outcomes in these patients. Subgroup analysis and multivariate logistic regression test were performed to identify factors influencing BilIN occurrence. RESULTS: The mean age of the patients included in our study was 40.1 ± 47.6 months. In 15 patients, BilIN of various grades was diagnosed. Todani type I was prevalent in 80% of the patients. The median age at surgery was 17 months. During a mean follow-up of 63.3 ± 94.0 months, no adverse events such as stone formation in the remnant intrapancreatic common bile duct and intrahepatic duct or cholangiocarcinoma were observed, indicating a favorable outcome until now. CONCLUSIONS: The potential progression of choledochal cysts to BilIN in children was demonstrated. These results could underscore the importance of early and comprehensive excision of choledochal cysts, including resection margins for associated lesions and more thorough postoperative surveillance in patients with or at risk of BilIN.


Subject(s)
Bile Duct Neoplasms , Carcinoma in Situ , Cholangiocarcinoma , Choledochal Cyst , Humans , Child , Child, Preschool , Infant , Choledochal Cyst/diagnosis , Choledochal Cyst/surgery , Choledochal Cyst/epidemiology , Bile Ducts, Intrahepatic/pathology , Bile Duct Neoplasms/diagnosis , Bile Duct Neoplasms/surgery , Bile Duct Neoplasms/epidemiology , Cholangiocarcinoma/diagnosis , Cholangiocarcinoma/surgery , Cholangiocarcinoma/epidemiology , Carcinoma in Situ/diagnosis , Carcinoma in Situ/surgery , Bile Pigments
6.
Biochemistry ; 63(9): 1225-1233, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38682295

ABSTRACT

As plant photoreceptors, phytochromes are capable of detecting red light and far-red light, thereby governing plant growth. All2699 is a photoreceptor found in Nostoc sp. PCC7120 that specifically responds to red light and far-red light. All2699g1g2 is a truncated protein carrying the first and second GAF (cGMP phosphodiesterase/adenylyl cyclase/FhlA) domains of All2699. In this study, we found that, upon exposure to red light, the protein underwent aggregation, resulting in the formation of protein aggregates. Conversely, under far-red light irradiation, these protein aggregates dissociated. We delved into the factors that impact the aggregation of All2699g1g2, focusing on the protein structure. Our findings showed that the GAF2 domain contains a low-complexity (LC) loop region, which plays a crucial role in mediating protein aggregation. Specifically, phenylalanine at position 239 within the LC loop region was identified as a key site for the aggregation process. Furthermore, our research revealed that various factors, including irradiation time, temperature, concentration, NaCl concentration, and pH value, can impact the aggregation of All2699g1g2. The aggregation led to variations in Pfr concentration depending on temperature, NaCl concentration, and pH value. In contrast, ΔLC did not aggregate and therefore lacked responses to these factors. Consequently, the LC loop region of All2699g1g2 extended and enhanced sensory properties.


Subject(s)
Bacterial Proteins , Light , Nostoc , Nostoc/metabolism , Nostoc/chemistry , Nostoc/radiation effects , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Protein Domains , Protein Aggregates , Photoreceptors, Microbial/chemistry , Photoreceptors, Microbial/metabolism , Bile Pigments/chemistry , Bile Pigments/metabolism , Hydrogen-Ion Concentration , Phytochrome/chemistry , Phytochrome/metabolism
7.
Nat Commun ; 15(1): 2740, 2024 Mar 28.
Article in English | MEDLINE | ID: mdl-38548733

ABSTRACT

Photoreceptor proteins utilise chromophores to sense light and trigger a biological response. The discovery that adenosylcobalamin (or coenzyme B12) can act as a light-sensing chromophore heralded a new field of B12-photobiology. Although microbial genome analysis indicates that photoactive B12-binding domains form part of more complex protein architectures, regulating a range of molecular-cellular functions in response to light, experimental evidence is lacking. Here we identify and characterise a sub-family of multi-centre photoreceptors, termed photocobilins, that use B12 and biliverdin (BV) to sense light across the visible spectrum. Crystal structures reveal close juxtaposition of the B12 and BV chromophores, an arrangement that facilitates optical coupling. Light-triggered conversion of the B12 affects quaternary structure, in turn leading to light-activation of associated enzyme domains. The apparent widespread nature of photocobilins implies involvement in light regulation of a wider array of biochemical processes, and thus expands the scope for B12 photobiology. Their characterisation provides inspiration for the design of broad-spectrum optogenetic tools and next generation bio-photocatalysts.


Subject(s)
Bile Pigments , Photoreceptors, Microbial , Photochemistry , Biliverdine , Bacterial Proteins/metabolism , Photoreceptors, Microbial/chemistry , Light
8.
J Mol Biol ; 436(5): 168357, 2024 Mar 01.
Article in English | MEDLINE | ID: mdl-37944794

ABSTRACT

Phytochromes constitute a family of photosensory proteins that are utilized by various organisms to regulate several physiological processes. Phytochromes bind a bilin pigment that switches its isomeric state upon absorption of red or far-red photons, resulting in protein conformational changes that are sensed by the organism. Previously, the ultrafast dynamics in bacterial phytochrome was resolved to atomic resolution by time-resolved serial femtosecond X-ray diffraction (TR-SFX), showing extensive changes in its molecular conformation at 1 picosecond delay time. However, the large excitation fluence of mJ/mm2 used in TR-SFX questions the validity of the observed dynamics. In this work, we present an excitation-dependent ultrafast transient absorption study to test the response of a related bacterial phytochrome to excitation fluence. We observe excitation power-dependent sub-picosecond dynamics, assigned to the population of high-lying excited state Sn through resonantly enhanced two-photon absorption, followed by rapid internal conversion to the low-lying S1 state. Inspection of the long-lived spectrum under high fluence shows that in addition to the primary intermediate Lumi-R, spectroscopic signatures of solvated electrons and ionized chromophore radicals are observed. Supported by numerical modelling, we propose that under excitation fluences of tens of µJ/mm2 and higher, bacterial phytochrome partly undergoes photoionization from the Sn state in competition with internal conversion to the S1 state in 300 fs. We suggest that the extensive structural changes of related, shorter bacterial phytochrome, lacking the PHY domain, resolved from TR-SFX may have been affected by the ionized species. We propose approaches to minimize the two-photon absorption process by tuning the excitation spectrum away from the S1 absorption or using phytochromes exhibiting minimized or shifted S1 absorption.


Subject(s)
Bacterial Proteins , Phytochrome , Bacterial Proteins/chemistry , Bile Pigments/chemistry , Isomerism , Phytochrome/chemistry , Spectrum Analysis , Absorption, Physicochemical , Protein Conformation , X-Ray Diffraction
9.
Biochemistry ; 62(19): 2828-2840, 2023 10 03.
Article in English | MEDLINE | ID: mdl-37699411

ABSTRACT

Cyanobacteriochrome (CBCR)-derived fluorescent proteins are a class of reporters that can bind bilin cofactors and fluoresce across the ultraviolet to the near-infrared spectrum. Derived from phytochrome-related photoreceptor proteins in cyanobacteria, many of these proteins use a single small GAF domain to autocatalytically bind a bilin and fluoresce. The second GAF domain of All1280 (All1280g2) from Nostoc sp. PCC7120 is a DXCF motif-containing protein that exhibits blue-light-responsive photochemistry when bound to its native cofactor, phycocyanobilin. All1280g2 can also bind non-photoswitching phycoerythrobilin (PEB), resulting in a highly fluorescent protein. Given the small size, high quantum yield, and that unlike green fluorescent proteins, bilin-binding proteins can be used in anaerobic organisms, the orange fluorescent All1280g2-PEB protein is a promising platform for designing new genetically encoded metal ion sensors. Here, we show that All1280g2-PEB undergoes a ∼5-fold reversible zinc-induced fluorescence enhancement with a blue-shifted emission maximum (572 to 517 nm), which is not observed for a related PEB-bound GAF from Synechocystis sp. PCC6803 (Slr1393g3). Zn2+ significantly enhances All1280g2-PEB fluorescence across a biologically relevant pH range from 6.0 to 9.0, with pH-dependent dissociation constants from 1 µM to ∼20-80 nM. Site-directed mutants aiming to sterically decrease and increase access to PEB show a decreased and similar amount of zinc-induced fluorescence enhancement. Mutation of the cysteine residue within the DXCF motif to alanine abolishes the zinc-induced fluorescence enhancement. Collectively, these results support the presence of a unique fluorescence-enhancing Zn2+ binding site in All1280g2-PEB likely involving coordination to the bilin cofactor and requiring a nearby cysteine residue.


Subject(s)
Nostoc , Phytochrome , Zinc/metabolism , Cysteine/chemistry , Fluorescence , Bile Pigments/metabolism , Nostoc/genetics , Nostoc/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Phytochrome/chemistry
10.
Plant Physiol ; 193(1): 246-258, 2023 08 31.
Article in English | MEDLINE | ID: mdl-37311159

ABSTRACT

Phytochromes are biliprotein photoreceptors present in plants, algae, certain bacteria, and fungi. Land plant phytochromes use phytochromobilin (PΦB) as the bilin chromophore. Phytochromes of streptophyte algae, the clade within which land plants evolved, employ phycocyanobilin (PCB), leading to a more blue-shifted absorption spectrum. Both chromophores are synthesized by ferredoxin-dependent bilin reductases (FDBRs) starting from biliverdin IXα (BV). In cyanobacteria and chlorophyta, BV is reduced to PCB by the FDBR phycocyanobilin:ferredoxin oxidoreductase (PcyA), whereas, in land plants, BV is reduced to PФB by phytochromobilin synthase (HY2). However, phylogenetic studies suggested the absence of any ortholog of PcyA in streptophyte algae and the presence of only PФB biosynthesis-related genes (HY2). The HY2 of the streptophyte alga Klebsormidium nitens (formerly Klebsormidium flaccidum) has already indirectly been indicated to participate in PCB biosynthesis. Here, we overexpressed and purified a His6-tagged variant of K. nitens HY2 (KflaHY2) in Escherichia coli. Employing anaerobic bilin reductase activity assays and coupled phytochrome assembly assays, we confirmed the product and identified intermediates of the reaction. Site-directed mutagenesis revealed 2 aspartate residues critical for catalysis. While it was not possible to convert KflaHY2 into a PΦB-producing enzyme by simply exchanging the catalytic pair, the biochemical investigation of 2 additional members of the HY2 lineage enabled us to define 2 distinct clades, the PCB-HY2 and the PΦB-HY2 clade. Overall, our study gives insight into the evolution of the HY2 lineage of FDBRs.


Subject(s)
Cyanobacteria , Phytochrome , Phylogeny , Ferredoxins/genetics , Plants/metabolism , Bile Pigments/metabolism , Biliverdine/chemistry , Biliverdine/genetics , Biliverdine/metabolism , Phytochrome/genetics , Phytochrome/metabolism , Cyanobacteria/genetics , Cyanobacteria/metabolism
11.
J Exp Biol ; 226(10)2023 05 15.
Article in English | MEDLINE | ID: mdl-37232483

ABSTRACT

The wings of the purple spotted swallowtail Graphium weiskei are marked by an unusual bright colour pattern. Spectrophotometry on G. weiskei wings demonstrated the presence of a pigment with an absorption spectrum (peak wavelength λmax=676 nm) similar to that of the bile pigment sarpedobilin in the wings of the congeneric Graphium sarpedon (λmax=672 nm). Sarpedobilin alone causes cyan-blue wing areas, but the green-coloured areas of G. sarpedon wings result from subtractive colour mixing with the carotenoid lutein. Reflectance spectra of the blue-coloured areas of G. weiskei wings indicate that sarpedobilin is mixed with the short-wavelength-absorbing papiliochrome II. An enigmatic pigment, tentatively called weiskeipigment (λmax=580 nm), enhances the saturation of the blue colour. Weiskeipigment causes a purple colour in areas where the sarpedobilin concentration is low. The wings of the related papilionid Papilio phorcas contain the bile pigment pharcobilin (λmax=604 nm), as well as another sarpedobilin (λmax=663 nm). The cyan to greenish wings of P. phorcas are due to phorcabilin and sarpedobilin mixed with papiliochrome II. A survey of known subspecies of G. weiskei as well as of congeneric Graphium species of the 'weiskei' group shows various degrees of subtractive colour mixing of bilins and short-wavelength absorbers (carotenoids and/or papiliochromes) in their wings. This study illuminates the underestimated role of bile pigments in butterfly wing colouration.


Subject(s)
Butterflies , Animals , Color , Pigmentation , Spectrophotometry , Bile Pigments , Wings, Animal
12.
Naturwissenschaften ; 110(3): 22, 2023 May 23.
Article in English | MEDLINE | ID: mdl-37219688

ABSTRACT

Carpenter bees can display distinct colouration patterns due to structural coloured wings and/or coloured hairs on their bodies. Females of the sexually dichromatic Xylocopa caerulea are marked by strongly blue-pigmented hairs on the head, thorax and abdomen. The thorax of female X. confusa is covered by yellow-pigmented hairs. The diffuse pigmentary colouration of the blue and yellow hairs is effectively enhanced by strongly scattering granules. The absorption spectrum of the blue pigment of X. caerulea has a maximum at 605 nm and is probably a bilin (a bile pigment). The absorption spectrum of the yellow pigment of X. confusa has a maximum at 445 nm and may be a pterin. The thoracic hairs of female X. confusa contain also a minor amount of the bilin. The reflectance spectra of the pigmented hairs suggest that the pigments are tuned to the spectral sensitivity of the bees' photoreceptors and provide spectral contrast with a green background.


Subject(s)
Bile Pigments , Hair , Female , Animals , Bees , Thorax
13.
Nihon Shokakibyo Gakkai Zasshi ; 120(4): 355-363, 2023.
Article in Japanese | MEDLINE | ID: mdl-37032100

ABSTRACT

A man in his 70s was admitted to our hospital due to jaundice and upper abdominal pain. Laboratory findings indicated elevated serum hepatobiliary enzyme and amylase levels. Contrast-enhanced computed tomography revealed smooth wall thickening of the terminal bile duct (tBD) with a faintly enhanced inner line. ERCP revealed stenosis from the tBD to the ampulla of Vater (AV) with upstream dilatation. Intraductal ultrasound (IDUS) circumferentially revealed a thickened wall preserving a three-layered structure throughout the same region. Furthermore, a thick innermost hyperechoic layer was identified in the bile duct portion of the AV (Ab). Findings suggestive of adenocarcinoma were obtained from the tissue samples from the biliary stricture using biopsy forceps. Thus, pancreatoduodenectomy was performed. A pathological examination revealed a thickened AV wall spreading over the tBD with hyperplasia of the glands and smooth muscle fibers. In addition, low-grade biliary intraepithelial neoplasia (BilIN) was scattered throughout the lesion, and high-grade BilIN was partly observed in the peribiliary glands of the Ab. Based on these results, a diagnosis of carcinoma in situ arising in adenomyomatous hyperplasia (ADMH) of the AV was made. To date, there are no reports on ADMH-associated carcinoma of the BD or AV. We here report this original case with the IDUS findings, which are presumed to reflect the histologic features of ADMH showing ductal proliferation surrounded by smooth muscle fibers. Also, we discuss the process through which carcinoma arises from ADMH in AV.


Subject(s)
Adenocarcinoma , Ampulla of Vater , Carcinoma in Situ , Common Bile Duct Neoplasms , Male , Humans , Ampulla of Vater/diagnostic imaging , Ampulla of Vater/surgery , Ampulla of Vater/pathology , Hyperplasia/pathology , Common Bile Duct Neoplasms/diagnostic imaging , Common Bile Duct Neoplasms/surgery , Adenocarcinoma/diagnostic imaging , Adenocarcinoma/surgery , Carcinoma in Situ/diagnostic imaging , Carcinoma in Situ/surgery , Carcinoma in Situ/pathology , Bile Pigments
14.
Proc Natl Acad Sci U S A ; 120(17): e2300770120, 2023 04 25.
Article in English | MEDLINE | ID: mdl-37071675

ABSTRACT

Terrestrial ecosystems and human societies depend on oxygenic photosynthesis, which began to reshape our atmosphere approximately 2.5 billion years ago. The earliest known organisms carrying out oxygenic photosynthesis are the cyanobacteria, which use large complexes of phycobiliproteins as light-harvesting antennae. Phycobiliproteins rely on phycocyanobilin (PCB), a linear tetrapyrrole (bilin) chromophore, as the light-harvesting pigment that transfers absorbed light energy from phycobilisomes to the chlorophyll-based photosynthetic apparatus. Cyanobacteria synthesize PCB from heme in two steps: A heme oxygenase converts heme into biliverdin IXα (BV), and the ferredoxin-dependent bilin reductase (FDBR) PcyA then converts BV into PCB. In the current work, we examine the origins of this pathway. We demonstrate that PcyA evolved from pre-PcyA proteins found in nonphotosynthetic bacteria and that pre-PcyA enzymes are active FDBRs that do not yield PCB. Pre-PcyA genes are associated with two gene clusters. Both clusters encode bilin-binding globin proteins, phycobiliprotein paralogs that we designate as BBAGs (bilin biosynthesis-associated globins). Some cyanobacteria also contain one such gene cluster, including a BBAG, two V4R proteins, and an iron-sulfur protein. Phylogenetic analysis shows that this cluster is descended from those associated with pre-PcyA proteins and that light-harvesting phycobiliproteins are also descended from BBAGs found in other bacteria. We propose that PcyA and phycobiliproteins originated in heterotrophic, nonphotosynthetic bacteria and were subsequently acquired by cyanobacteria.


Subject(s)
Cyanobacteria , Phycobiliproteins , Humans , Phylogeny , Phycobiliproteins/metabolism , Oxidoreductases/metabolism , Ecosystem , Bile Pigments/chemistry , Cyanobacteria/chemistry
15.
J Hepatobiliary Pancreat Sci ; 30(7): 893-903, 2023 Jul.
Article in English | MEDLINE | ID: mdl-36707055

ABSTRACT

BACKGROUND: To clarify the pathological significance of two precursors (high-grade biliary intraepithelial neoplasm [BilIN] and intraductal papillary neoplasm of bile duct [IPNB]) in cholangiocarcinomas (CCAs). METHODS: Ninety-one cases of CCA (47 distal CCAs [dCCAs], 31 perihilar CCAs [pCCAs] and 13 intrahepatic CCAs of large duct type [LD-iCCAs]) were examined for their association with precursors. Neoplastic intraepithelial lesions without underlying infiltrating carcinoma in the surrounding mucosa of CCAs were considered to reflect high-grade BilIN. High-grade BilIN and IPNB were subdivided into gastric, biliary, intestinal and oncocytic subtypes, while CCAs were subdivided into gastrobiliary, intestinal and oncocytic subtypes. The postoperative overall survival (OS) was examined. RESULTS: Fifty-four and 8 of 91 CCAs were associated with high-grade BilIN and IPNB, respectively, while these precursors were unidentifiable in the remaining CCAs. A majority of CCAs were of the gastrobiliary subtype, while the intestinal subtype was occasionally detected, and the oncocytic subtype was rare. CCAs with high-grade BilIN showed a similar postoperative OS to CCAs without precursors, while CCAs with IPNB showed a favorable postoperative OS compared to CCAs without precursors. CONCLUSIONS: CCAs were frequently associated with precursors; high-grade BilIN may be a major precursor and IPNB a minor one. CCAs with IPNB showed a favorable postoperative OS compared to CCAs with high-grade BilIN.


Subject(s)
Bile Duct Neoplasms , Carcinoma in Situ , Cholangiocarcinoma , Humans , Bile Ducts, Intrahepatic/pathology , Bile Duct Neoplasms/surgery , Bile Duct Neoplasms/pathology , Cholangiocarcinoma/surgery , Cholangiocarcinoma/pathology , Bile Ducts/pathology , Carcinoma in Situ/pathology , Bile Pigments
16.
J Biol Chem ; 299(1): 102763, 2023 01.
Article in English | MEDLINE | ID: mdl-36463961

ABSTRACT

PcyA, a ferredoxin-dependent bilin pigment reductase, catalyzes the site-specific reduction of the two vinyl groups of biliverdin (BV), producing phycocyanobilin. Previous neutron crystallography detected both the neutral BV and its protonated form (BVH+) in the wildtype (WT) PcyA-BV complex, and a nearby catalytic residue Asp105 was found to have two conformations (protonated and deprotonated). Semiempirical calculations have suggested that the protonation states of BV are reflected in the absorption spectrum of the WT PcyA-BV complex. In the previously determined absorption spectra of the PcyA D105N and I86D mutants, complexed with BV, a peak at 730 nm, observed in the WT, disappeared and increased, respectively. Here, we performed neutron crystallography and quantum chemical analysis of the D105N-BV and I86D-BV complexes to determine the protonation states of BV and the surrounding residues and study the correlation between the absorption spectra and protonation states around BV. Neutron structures elucidated that BV in the D105N mutant is in a neutral state, whereas that in the I86D mutant is dominantly in a protonated state. Glu76 and His88 showed different hydrogen bonding with surrounding residues compared with WT PcyA, further explaining why D105N and I86D have much lower activities for phycocyanobilin synthesis than the WT PcyA. Our quantum mechanics/molecular mechanics calculations of the absorption spectra showed that the spectral change in D105N arises from Glu76 deprotonation, consistent with the neutron structure. Collectively, our findings reveal more mechanistic details of bilin pigment biosynthesis.


Subject(s)
Bile Pigments , Oxidoreductases , Bile Pigments/biosynthesis , Bile Pigments/chemistry , Biliverdine/chemistry , Catalysis , Crystallography , Oxidoreductases/genetics , Oxidoreductases/chemistry , Mutation
17.
Elife ; 112022 12 08.
Article in English | MEDLINE | ID: mdl-36476508

ABSTRACT

We aimed to elucidate the evolutionary trajectories of gallbladder adenocarcinoma (GBAC) using multi-regional and longitudinal tumor samples. Using whole-exome sequencing data, we constructed phylogenetic trees in each patient and analyzed mutational signatures. A total of 11 patients including 2 rapid autopsy cases were enrolled. The most frequently altered gene in primary tumors was ERBB2 and TP53 (54.5%), followed by FBXW7 (27.3%). Most mutations in frequently altered genes in primary tumors were detectable in concurrent precancerous lesions (biliary intraepithelial neoplasia [BilIN]), but a substantial proportion was subclonal. Subclonal diversity was common in BilIN (n=4). However, among subclones in BilIN, a certain subclone commonly shrank in concurrent primary tumors. In addition, selected subclones underwent linear and branching evolution, maintaining subclonal diversity. Combined analysis with metastatic tumors (n=11) identified branching evolution in nine patients (81.8%). Of these, eight patients (88.9%) had a total of 11 subclones expanded at least sevenfold during metastasis. These subclones harbored putative metastasis-driving mutations in cancer-related genes such as SMAD4, ROBO1, and DICER1. In mutational signature analysis, six mutational signatures were identified: 1, 3, 7, 13, 22, and 24 (cosine similarity >0.9). Signatures 1 (age) and 13 (APOBEC) decreased during metastasis while signatures 22 (aristolochic acid) and 24 (aflatoxin) were relatively highlighted. Subclonal diversity arose early in precancerous lesions and clonal selection was a common event during malignant transformation in GBAC. However, selected cancer clones continued to evolve and thus maintained subclonal diversity in metastatic tumors.


Subject(s)
Adenocarcinoma , Precancerous Conditions , Humans , Adolescent , Phylogeny , Gallbladder , Nerve Tissue Proteins , Receptors, Immunologic , Adenocarcinoma/genetics , Mutation , Precancerous Conditions/genetics , Bile Pigments , Ribonuclease III , DEAD-box RNA Helicases
18.
Pathol Int ; 72(12): 589-605, 2022 Dec.
Article in English | MEDLINE | ID: mdl-36349994

ABSTRACT

The biliary system is a highly branched tubular network consisting of intrahepatic bile ducts (IHBDs) and extrahepatic bile ducts (EHBDs). IHBDs are derived from hepatic progenitor cells, while EHBDs originate directly from the endoderm through a separate branching morphogenetic process. Traits that are important for cancer are often found to overlap in developmental and other processes. Therefore, it has been suggested that intrahepatic cholangiocarcinomas (iCCAs) and extrahepatic cholangiocarcinomas (eCCAs) have different developmental mechanisms. While much evidence is being gathered on the mechanism of iCCAs, the evidence for eCCA is still very limited. The main reason for this is that there are very few appropriate animal models for eCCA. We can gain important insights from these animal models, particularly genetically engineered mouse models (GEMMs). GEMMs are immunocompetent and mimic human CCA subtypes with a specific mutational pattern, allowing the development of precancerous lesions, that is, biliary intraepithelial neoplasia (BilIN) and intraductal papillary neoplasm of the bile duct (IPNB). This review provides a summary of the pathogenesis and mechanisms of eCCA that can be revealed by GEMMs. Furthermore, we discuss several clinical questions, such as whether BilIN and IPNB really become malignant, whether the peribiliary gland is the origin of eCCAs, and others.


Subject(s)
Bile Duct Neoplasms , Bile Ducts, Extrahepatic , Cholangiocarcinoma , Animals , Mice , Humans , Bile Duct Neoplasms/pathology , Bile Ducts, Intrahepatic/pathology , Cholangiocarcinoma/pathology , Bile Ducts, Extrahepatic/pathology , Cell Transformation, Neoplastic/genetics , Cell Transformation, Neoplastic/pathology , Bile Pigments
19.
Eur J Med Res ; 27(1): 224, 2022 Oct 29.
Article in English | MEDLINE | ID: mdl-36309733

ABSTRACT

Bile pigments, such as bilirubin and biliverdin, are end products of the heme degradation pathway in mammals and are widely known for their cytotoxic effects. However, recent studies have revealed that they exert cytoprotective effects through antioxidative, anti-inflammatory, and immunosuppressive properties. All these mechanisms are indispensable in the treatment of diseases in the field of emergency and critical care medicine, such as coronary ischemia, stroke, encephalomyelitis, acute lung injury/acute respiratory distress syndrome, mesenteric ischemia, and sepsis. While further research is required before the safe application of bile pigments in the clinical setting, their underlying mechanisms shed light on their utilization as therapeutic agents in the field of emergency and critical care medicine. This article aims to summarize the current understanding of bile pigments and re-evaluate their therapeutic potential in the diseases listed above.


Subject(s)
Bile Pigments , Respiratory Distress Syndrome , Animals , Humans , Bile Pigments/metabolism , Biliverdine/metabolism , Antioxidants/therapeutic use , Critical Care , Mammals/metabolism
20.
J Agric Food Chem ; 70(38): 12055-12064, 2022 Sep 28.
Article in English | MEDLINE | ID: mdl-36122349

ABSTRACT

Cannabidiol (CBD), the main nonpsychoactive cannabinoid in Cannabis sativa, has diverse applications in the pharmacological, food, and cosmetic industries. The long plantation period and the complex chemical structure of cannabidiol pose a great challenge on CBD supply. Here, we achieved de novo biosynthesis of cannabidiol in Saccharomyces cerevisiae. The CBD production was further enhanced by 2.53-fold through pushing the supply of precursors and fusion protein construction. Bile pigment transporter 1 (BPT1) was the most effective transporter for transferring cannabigerolic acid (CBGA) from the cytoplasm to the vacuole, which removed the physical barrier separating CBGA and its catalytic enzyme. The lowest binding energy of the CBGA-BPT1 complex confirmed a strong interaction between BPT1 and CBGA. A CBD yield of 6.92 mg/L was achieved, which was 100-fold higher than the yield generated by the starting strain. This study provides insights into high-level CBD-producing strain construction and lays the foundation for CBD supply.


Subject(s)
Cannabidiol , Cannabinoids , Cannabis , Bile Pigments , Cannabidiol/chemistry , Cannabis/chemistry , Cannabis/genetics , Saccharomyces cerevisiae/genetics , Vacuoles
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