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Radiosensitivity of different human tumor cells lines grown as multicellular spheroids determined from growth curves and survival data.

Five human tumor cell lines were grown as multicellular tumor spheroids (MTS) to determine whether multicellular tumor spheroids derived from different types of tumors would show tumor-type dependent differences in response to single-dose irradiation, and whether these differences paralleled clinical behavior. Multicellular tumor spheroids of two neuroblastoma, one lung adenocarcinoma, one melanoma, and a squamous cell carcinoma of the oral tongue, were studied in terms of growth delay, calculated cell survival, and spheroid control dose50 (SCD50). Growth delay and cell survival analysis for the tumor cell lines showed sensitivities that correlated well with clinical behavior of the tumor types of origin. Similar to other studies on melanoma multicellular tumor spheroids our spheroid control dose50 results for the melanoma cell line deviated from the general pattern of sensitivity. This might be due to the location of surviving cells, which prohibits proliferation of surviving cells and hence growth of melanoma multicellular tumor spheroids. This study demonstrates that radiosensitivity of human tumor cell lines can be evaluated in terms of growth delay, calculated cell survival, and spheroid control dose50 when grown as multicellular tumor spheroids. The sensitivity established from these evaluations parallels clinical behavior, thus offering a unique tool for the in vitro analysis of human tumor radiosensitivity.

Cell Division

[Effects of anticancer drugs on multicellular spheroid of 9L rat brain tumor].

The effects of the anticancer drugs Nimustine (ACNU), Aclacinomycin A (ACR), Adriamycin (ADM), Bleomycin (BLM), Cisplatin (CDDP), and 5-Fluorouracil (5-FU) on the multicellular spheroid of a chemically-induced 9L rat glioma was studied. The multicellular spheroid in which cells grow in vitro as three-dimensional aggregates represents a biological model, which is intermediate between monolayer cells in vitro and solid tumors. Spheroids were initiated in bacteriological grade petri dishes seeded with 10(6) 9L rat glioma cells, cultured for four days and thereafter transferred and further developed in a spinner flask. Spheroids of 200-400 micron diameter were sorted and exposed for 24 hours to 5-FU and one hour for other drugs. After treatment both cytotoxic effect and growth delay were analyzed. Following disaggregation using collagenase, pronase and DNAase, cytotoxic effect on multicellular spheroids was measured by colony forming assay and were compared with those effects on 9L monolayer culture cells in the exponential growth. For growth delay assay, multicellular spheroids were individually transferred to 16 mm well containing 0.4 ml agarose base and 2 ml culture medium. Spheroid size was measured twice a week and growth curves were drawn. The growth delay was determined as the treated group vs. control differences in time required to a size four times that of the initial volume. For cells both in the monolayer culture and the multicellular spheroid, the dose response curve for ADM, BLM and 5-FU was "biphasic" and that for ACNU, ACR and CDDP "shoulder-threshold" type.(ABSTRACT TRUNCATED AT 250 WORDS)

Aclarubicin

Freedom from wholism in multicellular organisms: a possible role of tumor suppressor genes.

Wholism, known as 'homeostasis' in multicellular organisms, is fundamentally expressed in the regulation of cell proliferation and of the metabolism of individual cells. Control mechanisms represent an overriding control of the autonomy of cells in multicellular organisms. Negative regulation by suppressor genes including tumor suppressor genes is essential to maintain homeostasis in these organisms. Without wholistic regulation, the cellular society of multicellular organisms would progress from bad to worse, with eventual destruction of the whole system. The enhancement of division and differentiation of cells transduced by water-soluble factors may be considered as the controlling structure on the tumor suppressor genes. In microevolution, cell killing by the immunosurveillance systems directed at the external environments has been avoided for the 'self' cells in general, since the multicellular organism may not be considered as only a crowd of single cells.

Animals

Repair of sublethal damage in two human tumor cell lines grown as multicellular spheroids.

Multicellular tumor spheroids (MTS) provide a suitable in vitro model to study radiation sensitivity of tumor cells. Two cell lines of human origin, obtained from a neuroblastoma (NB-100) and a squamous cell carcinoma (HN-1), were exposed to graded doses (4-9 Gy) of radiation with 18 MV photons. Radiation was applied either as a single or as a split dose with an interval of 6 hr to determine the extent of sublethal damage repair. Treated spheroids regrew at approximately the same growth rate as control multicellular tumor spheroids, preceded by a static or regression phase. Radiation response was quantified in terms of regrowth delay, expressed as the time needed for treated spheroids to obtain an 8-fold increase of the initial volume at the time of irradiation. Data obtained from regrowth delay analysis were used to calculate the extent of sublethal damage repair, showing for the squamous cell carcinoma line a fractionally higher capacity to repair sublethal damage than the neuroblastoma line. Repair increased with larger dose fractions in both cell lines. Our results show that multicellular tumor spheroids from the two cell lines used in this study are best applicable at relatively high total radiation doses. This makes multicellular tumor spheroids a suitable model for the in vitro evaluation of clinical treatment rationales such as hyperfractionation.

Carcinoma, Squamous Cell

Closely linked genetic loci required for swarm cell differentiation and multicellular migration by Proteus mirabilis.

The pathogenic bacterium Proteus mirabilis exhibits a form of multicellular behaviour called swarming migration. This involves the differentiation of vegetative cells at the colony margin into swarm cells which are long, aseptate, multinucleate, hyper-flagellated filaments able to undergo repeated cycles of co-ordinated population migration and consolidation (reversion to vegetative cells). Transposon mutagenesis of uropathogenic P. mirabilis strain U6450 with Tn5 generated 4860 chromosomal insertions and, of these, 75 (1.6%) caused visibly abnormal swarming behaviour, indicating that at least 45 genes are involved in directing motility, cell differentiation and multicellular behaviour. While about one fifth of the swarm-defective mutants lacked flagella and were non-motile non-swarming (NMNS) the majority were normally flagellated and motile but were unable to form swarm cells (motile non-swarming, MNS), or were motile and able to form swarm cells but displayed aberrant patterns of multicellular migration (dendritic swarming, DS) or consolidation (frequent and infrequent consolidation, FC and IC). Restriction enzyme mapping of representative mutant DNAs by Southern hybridization with transposon DNA probes identified eight different mutated genetic loci within the five phenotypic classes. Subsequent Southern analysis of large restriction fragments separated by pulsed-field electrophoresis showed that these eight mutated loci required for motility, cell differentiation and multicellular migration were clustered on a region of DNA spanning approximately 8% of the 4.2 mbp P. mirabilis chromosome. Further linkage analysis showed that the DS locus involved in the ordered migration of the swarm cell population mapped separately from two main clusters of swarm loci, one cluster containing, within 112 kbp, genetic determinants of motility (NMNS) and also differentiation into swarm cells (MNS1, MNS2), and a second within a neighbouring 95 kbp DNA sequence containing three loci involved in the control of consolidation (FC, IC1, IC2).

Base Sequence

Temperature-sensitive multicellular mutants of Wangiella dermatitidis.

Three temperature-sensitive morphological mutants of Wangiella dermatitidis were isolated and characterized. The mutants grew in the yeastlike morphology at the permissive temperature (25 degrees C) but expressed a multicellular (Mc) phenotype at the restrictive temperature (37 degrees C). Cultures of Mc 2 and 3 incubated at the restrictive temperature showed rapid reductions in the percentage of budded cells in the population. In contrast, budding continued for several generations in cultures of Mc 1. Incubation of cultures of Mc 2 and 3 at the restrictive temperature for 48 h resulted in nearly total conversion of yeastlike cells to the multicellular form; about 50% of the cells of Mc 1 had converted to multicellular forms after 48 h at the restrictive temperature. Studies using radiolabeled compounds documented that DNA, RNA, and protein synthesis continued at the restrictive temperature. The results suggest that multicellularity is the result of inhibition of bud emergence and cell separation without inhibition of growth nuclear division, and cytokinesis.

DNA

Encapsulated multicellular spheroids of rat hepatocytes produce albumin and urea in a spouted bed circulating culture system.

Multicellular spheroids are spherical cell-aggregates that retain tridimensional architecture and tissue-specific functions. For use of multicellular spheroids of hepatocytes in a bioreactor for hybrid artificial liver support, we studied the effect of encapsulation and circulating culture on their integrity and tissue-specific functions. Multicellular spheroids of rat hepatocytes were encapsulated into microdroplets of calcium alginate gel and were used as a bioreactor in medium circulating in a spouted bed chamber. Approximately 10% of the hepatocytes of an adult rat were entrapped in a bioreactor chamber, connected to a gas exchanger and a medium reservoir. The total bed volume of the system was 250 ml. The pH and DO2 of the hormonally defined circulating medium was maintained constantly. Albumin and urea were produced in a linear fashion for 64 h at the rates of 0.02 micrograms/microgram cell protein/day and 0.15-0.2 ng/micrograms cell protein/day, respectively. Viability and structural stability of the spheroids were well preserved after the culture period. These results indicate that these encapsulated multicellular hepatocyte spheroids will provide a useful bioreactor for the continuous production of albumin, in vitro and also a prototype hybrid artificial liver support.

Albumins

Mathematical model of simultaneous diffusion and binding of antitumor antibodies in multicellular human tumor spheroids.

Multicellular tumor spheroids are widely used as in vitro models of poorly vascularized tumor nodules in vivo. The uptake kinetics of tumor-associated antibodies in multicellular tumor spheroids is assumed to be governed by passive diffusion and irreversible binding of the antibodies with binding sites on the cell surface. By further assuming that the spheroids are homogeneous with respect to diffusion and binding, a mathematical model has been developed which permits the extraction of the macroscopic diffusion constant D and the macroscopic binding rate k from empirical studies. The model was applied to uptake kinetics data obtained (a) with a melanoma-associated monoclonal antibody 96.5 (isotype IgG2a)-human multicellular melanoma spheroid system exhibiting strong antibody to cell binding and (b) with the same monoclonal antibody-human multicellular colon adenocarcinoma HT29 spheroid system exhibiting nonspecific binding. The spheroids had approximately 300 microns diameter. The constants D and k were estimated to be 0.45 micron2 s-1 and 2.0 x 10(-3) s-1, respectively, for the system with specific binding. Saturation of binding sites occurred. In the nonspecific binding system, D and k were found to be 0.10 micron2 s-1 and 1.0 x 10(-5) s-1. No saturation of binding sites occurred. D and k were also estimated to be, respectively, 0.52 micron2 s-1 and 6.4 x 10(-5) s-1 for another melanoma-associated monoclonal antibody 140.240 (same isotype as 96.5) in the melanoma spheroid system exhibiting moderate cell binding with the antibody. The mathematical model describes well the system exhibiting nonspecific binding, but requires modifications and further development for the systems exhibiting moderate to strong binding.

Adenocarcinoma

Multicellular ecosystems: Linking cellular diversity to tissue function and disease.

Tissue function emerges from coordinated interactions among diverse cell populations, whereas disruption of these interactions can lead to dysfunction. Recent advances in single-cell and spatial genomics have not only cataloged cellular diversity but also revealed how tissues are organized as dynamic multicellular ecosystems. Moving beyond descriptive cell atlases toward functional, system-level representations represents a major frontier in tissue biology. In this review, we outline conceptual and methodological frameworks for dissecting multicellular coordination, highlight recurrent multicellular ecosystems across physiological and pathological contexts, and explore translational opportunities such as patient stratification, therapeutic reprogramming, and regenerative strategies. Viewing tissues through an ecosystem lens provides a unifying framework that links cellular diversity to emergent tissue function and informs strategies for disease intervention.

Humans

MCF-7 breast cancer cells grown as multicellular spheroids in vitro: effect of 17 beta-estradiol.

To obtain multicellular spheroids from MCF-7 human breast cancer cells we adhered to the following procedure: (a) limiting the adherence of cell to the substratum; (b) seeding more than the minimum number of cells; (c) guaranteeing the presence of estrogens in the culture medium. Charcoal-dextran (CD)-treated sera seemed to inhibit spheroid formation. A reduction in the concentration of CD-human sera (from 10% to 5%) added to phenol-red-free medium facilitated progress from cellular aggregates to multicellular spheroids. Once the spheroids became initiated, size increased at a rate that showed a good fit to a Gompertzian equation (A = 0.368 +/- 0.067 alpha = 0.065 +/- 0.013, r range = 0.890-0.989). Three different patterns of spheroid morphology and proliferative kinetic were defined: (a) spheroids with diameter less than 200 microns had a constant pattern of heterogeneity in the distribution of 3H-TdR-labelled cells and in the expression of estrogen receptors; (b) spheroids 250 to 700 microns in diameter showed a decrease in the proportion of 3H-TdR-labelled cells accompanying inward progression (50% in the outer shell, less than 10% in a cell layer located at a depth of 150 microns) while, at a depth of 170 microns, of signs of concurrent cellular degeneration and death were apparent; and (c) spheroids with a diameter of greater than 750 microns showed a crust of viable cells uniformly labelled with thymidine without impairment of the proportion of labelled cells when progressing inward from the spheroid crust. The larger the spheroid volume, the lower its growth fraction and the longer its volume doubling time. The hormone-dependence of MCF-7 cells in forming multicellular spheroids represents a unique experimental model for assessing estrogen action on cell organization and proliferation.

Breast Neoplasms

Organization of intestinal epithelial cells into multicellular structures requires laminin and functional actin microfilaments.

Epithelial cell organization into multicellular structures is a critical biological process required for both organogenesis and repair following injury. The basement membrane and the cytoskeleton have important roles in this process; however, the functions of individual components of basement membrane and cytoskeleton are poorly understood. We used IEC-6 cells, a rat intestinal crypt cell line, grown on a three-dimensional gel of reconstituted basement membrane as a model system to determine which extracellular matrix and cytoskeletal components mediate intestinal epithelial cell organization. The cells entered the gel and formed hollow, tubular structures that resembled intestinal crypts. These structures were characterized by a single layer of polarized cells with apical tight junctions and microvilli on the luminal surface. Antiserum to laminin and the pentapeptide Tyr-Ile-Gly-Ser-Arg (which prevents cell attachment to laminin) inhibited this organization, but a control pentapeptide (Tyr-Tyr-Gly-Asp-Ala) and antiserum to collagen IV did not. Cytochalasin B, which interferes with actin microfilament polymerization, also inhibited organization of cells into multicellular structures, but vinblastine and Colcemid, which disrupt microtubules, and cycloheximide, which inhibits protein synthesis, did not. We conclude that organization of intestinal epithelial cells on a basement membrane into multicellular structures results from specific interactions between cells and laminin and requires intact actin microfilaments.

Actin Cytoskeleton

Effects of the extracellular matrix on fetal choroid plexus epithelial cells: changes in morphology and multicellular organization do not affect gene expression.

We have developed a primary culture system for fetal mouse choroid plexus epithelial cells which maintains their differentiated phenotype. When grown on a reconstituted basement membrane substrate (Matrigel) epithelial cells formed aggregates which became embedded in the matrix and developed into characteristic and highly reproducible multicellular vesicular structures. These vesicles consisted of a squamous layer of epithelial cells with extensive attachment to the matrix substrate, surrounding a fluid-filled lumen. Electron microscopy showed that cells comprising these vesicles had a high degree of membrane specialization and polarized morphology which in many respects mimicked the in vivo morphology. Biochemical analyses demonstrated that under these culture conditions the tissue-specific pattern of gene expression of fetal choroid plexus epithelium was maintained. After 6 days in culture these cells contained approximately the same amount of transthyretin mRNA as the 12.5-day choroid plexus in vivo, and the level of total RNA per cell, which is proportional to the protein synthetic capability of the cells, was also maintained. The pattern of protein secretion was also very similar to that generated by fetal mouse choroid plexus cells in vivo. In contrast choroid plexus epithelial cells attached poorly to collagen I gels. Heterogeneous aggregates were formed in which cell-cell interactions were more extensive than cell-substrate interactions, and in no cases was a central lumen observed. Cells on the surface of large aggregates showed some evidence of membrane polarization, while the majority of cells in the cultures exhibited little evidence of polarized morphology. Despite the striking difference in morphology and multicellular organization these cells still expressed high levels of transthyretin mRNA and maintained the same pattern of protein synthesis as cells cultured on Matrigel. These results indicate that the basement membrane is important for the organization of choroid plexus epithelial cells into a functional epithelium in vitro and thus presumably the maintenance of the integrity of the blood-brain barrier in vivo. In contrast to several other epithelial systems which have been studied, the type of extracellular matrix does not appear to directly influence tissue-specific gene expression by choroid plexus epithelial cells. Thus the level of gene expression is not dependent on the cytoarchitecture and multicellular organization of this cell type.

Animals

MACSPI enables tissue-selective proteomic and interactomic analyses in multicellular organisms.

Multicellular organisms are composed of many tissue types that have distinct morphologies and functions, which are largely driven by specialized proteomes and interactomes. To define the proteome and interactome of a specific type of tissue in an intact animal, we developed a localized proteomics approach called Methionine Analog-based Cell-Specific Proteomics and Interactomics (MACSPI). This method uses the tissue-specific expression of an engineered methionyl-tRNA synthetase to label proteins with a bifunctional amino acid 2-amino-5-diazirinylnonynoic acid in selected cells. We applied MACSPI in Caenorhabditis elegans, a model multicellular organism, to selectively label, capture, and profile the proteomes of the body wall muscle and the nervous system, which led to the identification of tissue-specific proteins. Using the photo-cross-linker, we successfully profiled HSP90 interactors in muscles and neurons and identified tissue-specific interactors and stress-related interactors. Our study demonstrates that MACSPI can be used to profile tissue-specific proteomes and interactomes in intact multicellular organisms.

Animals

Differences in the uptake of transferrin bound 239Pu and 59Fe into multicellular spheroids of hepatocytes from adult male rats.

Hepatocytes were cultured as monolayers and multicellular spheroids, respectively. The uptake of both transferrin-bound metals, iron and plutonium, differed significantly between these two culture systems. The uptake into the multicellular spheroids for plutonium was about 30 times greater, and for iron about 4 times greater, than in monolayer-cultured hepatocytes, which is not a consequence of proliferation and/or de-differentiation of the hepatocytes in the multicellular spheroid culture system. A comparison of the iron and plutonium uptake showed that plutonium was delivered to the cells to an 8-fold greater extent than iron if the hepatocytes were cultured as spheroids. Additionally, the binding of plutonium was not inhibited by preincubation of the spheroids with the iron-transferrin complex. Therefore, we propose that there are two different binding sites for iron and plutonium on hepatocyte membranes.

Animals

Cure, cell killing, growth delay and fragmentation of X-irradiated human melanoma HMV-I multicellular spheroids.

Human melanoma, HMV-I, multicellular spheroids were irradiated and cure was determined by the absence of cellular outgrowth. Their cellular radiosensitivity was measured by the colony-forming ability of cells dispersed from the spheroid. Analysis of radiocurability of spheroids in terms of their cellular radiosensitivity predicted three necessary conditions: a linearity of dose versus the double-minus logarithm of curability; constancy of a critical cell number; and constancy of cellular radiosensitivity. These conditions were found to exist in the observed data for each of three size classes of spheroids. Analysis suggests that cellular radiosensitivity in multicellular spheroids with diameters of 250 and 400 microns was different from that of monolayers, and that the increase of spheroid-control doses was found to be a function of cellular radiosensitivity, total cell number per spheroid and a critical cell number. The critical cell number increased from 0.8 in a 150 microns spheroid to 4 in a 250 microns spheroid and to 57 in 400 microns spheroid. This number is a unique characteristic of multicellular systems and is one important factor in determining their radiocurability. X-ray-induced growth delay of spheroid size was increased with increasing dose. At high doses a sharp increase in delay time was seen, sometimes accompanying fragmentation of spheroids at late postirradiation times. The clonogenic activity of these fragments may serve as a model of exfoliation, the first step of radiation-induced metastasis.

Cell Aggregation

Pregnancy rates after transfer of embryos obtained from different stimulation protocols and frozen at either pronucleate or multicellular stages.

After in-vitro fertilization, 2161 supernumerary embryos were frozen with 1,2-propanediol and sucrose as cryoprotectants at either pronucleate or multicellular (2-6 blastomeres) stages. By the end of March 1990, 494 pronucleate stage embryos and 492 multicellular stage embryos had been thawed and 54 and 47% of them, respectively were considered suitable for transfer. Ongoing pregnancy and implantation rates were 17.9 and 10.7%, respectively for embryos frozen at the pronucleate stage and 5.5 and 4.7% for embryos frozen at the multicellular stage. Ovarian stimulation with human menopausal gonadotrophin (HMG) after pharmacological hypophysectomy with a gonadotrophin releasing hormone agonistic analogue (GnRHa) using a long protocol permitted us to freeze significantly more embryos per cycle (7.2 +/- 4.1) than stimulation with HMG and GnRHa in a short protocol (4.7 +/- 3.4) or stimulation with clomiphene citrate (CC) and HMG (2.7 +/- 1.9). Ongoing pregnancy rates after transfer during the stimulated cycles were similar for the three types of treatment (27.1, 27.3 and 32.1%, respectively). However, ongoing pregnancy rates after frozen-thawed embryo transfers were significantly higher when originating from GnRHa + HMG treatments (14.3 and 14.8%, respectively for long and short protocols) than when originating from CC + HMG treatment (5.6%). Embryo cryopreservation has permitted the ongoing pregnancy rate to increase from 28.4 to 36.9% (P less than 0.01) even though more than half of the embryos have not been thawed. We conclude that embryos obtained after stimulation with GnRHa + HMG and frozen at the pronucleate stage are more likely to result in a pregnancy.

Cryopreservation

Proteus mirabilis mutants defective in swarmer cell differentiation and multicellular behavior.

Proteus mirabilis is a dimorphic bacterium which exists in liquid cultures as a 1.5- to 2.0-microns motile swimmer cell possessing 6 to 10 peritrichous flagella. When swimmer cells are placed on a surface, they differentiate by a combination of events that ultimately produce a swarmer cell. Unlike the swimmer cell, the polyploid swarmer cell is 60 to 80 microns long and possesses hundreds to thousands of surface-induced flagella. These features, combined with multicellular behavior, allow the swarmer cells to move over a surface in a process called swarming. Transposon Tn5 was used to produce P. mirabilis mutants defective in wild-type swarming motility. Two general classes of mutants were found to be defective in swarming. The first class was composed of null mutants that were completely devoid of swarming motility. The majority of nonswarming mutations were the result of defects in the synthesis of flagella or in the ability to rotate the flagella. The remaining nonswarming mutants produced flagella but were defective in surface-induced elongation. Strains in the second general class of mutants, which made up more than 65% of all defects in swarming were motile but were defective in the control and coordination of multicellular swarming. Analysis of consolidation zones produced by such crippled mutants suggested that this pleiotropic phenotype was caused by a defect in the regulation of multicellular behavior. A possible mechanism controlling the cyclic process of differentiation and dediferentiation involved in the swarming behavior of P. mirabilis is discussed.

Cell Division

A conserved partner-switching system controls terminal differentiation in multicellular cyanobacteria.

UNLABELLED: Canonical partner-switching systems (PSSs) regulate sigma factor activity through reversible phosphorylation, but their established roles have been largely limited to stress responses and sporulation in Firmicutes. Whether this regulatory mechanism also controls developmental cell fate decisions in other bacterial phyla has remained unknown. Here, we identify a canonical PSS that governs heterocyst differentiation in the multicellular cyanobacterium Anabaena sp. PCC 7120. This system comprises the anti-sigma factor All2284 (NfsS) and the anti-anti-sigma factor All2283 (NfsR). Structural predictions and biochemical assays showed that NfsS phosphorylates NfsR on a conserved serine residue, whereas bacterial two-hybrid and co-purification assays demonstrated that NfsS binds the developmental sigma factors SigC and SigE. Deletion of nfsR abolished heterocyst formation and diazotrophic growth, and transcriptomic analysis revealed broad failure to induce late heterocyst genes, including nitrogen fixation functions such as nifHDK and fdxH. Phylum-wide comparative genomics further showed that PSS genes and putative functional clusters are strongly enriched in filamentous and heterocyst-forming taxa, indicating an association between the expansion of these signaling modules and the emergence of multicellularity and developmental specialization. Together, these findings establish a PSS as a direct regulator of terminal cell differentiation in a gram-negative bacterium and reveal partner switching as a conserved regulatory principle linking environmental signaling to developmental fate in a major bacterial phylum. IMPORTANCE: While partner-switching systems are classically associated with stress responses and sporulation control in Firmicutes, whether this regulatory logic governs developmental decisions in other bacterial phyla has remained unknown. Here, we establish that a related partner-switching mechanism operates in a distinct bacterial lineage, the cyanobacteria, where it controls a major developmental transition involving terminal cell differentiation. Specifically, we show that a phosphorylation-dependent checkpoint involving the anti-sigma factor NfsS and the anti-anti-sigma factor NfsR directly regulates heterocyst formation. Disruption of this switch abolishes cell differentiation and diazotrophic growth, revealing that this system is an obligate gatekeeper for terminal differentiation. Conceptually, these findings substantially extend the known functional repertoire of partner-switching circuits: rather than controlling stress adaptation or spore dormancy, this module has been co-opted to govern a complex, multicellular developmental program in an organism that underpins global carbon and nitrogen cycles. This work, therefore, establishes a new paradigm for phosphorylation-based control of developmental sigma factors and provides a tractable model for dissecting how conserved signaling modules are rewired to drive lineage-specific innovations across the bacterial domain.

cell differentiation