干细胞之家 - 中国干细胞行业门户第一站

标题: Syndecan-regulated Receptor Signaling [打印本页]

作者: 杨柳    时间: 2009-3-5 23:01     标题: Syndecan-regulated Receptor Signaling

a Department of Pathology and Laboratory Medicine, University of Wisconsin-Madison, Madison, Wisconsin 53706! G' Y. C0 B; t2 w: }$ ?: d
1 f* Q7 X( C# u# V4 t; ]
Correspondence to: Alan C. Rapraeger, Department of Pathology and Laboratory Medicine, University of Wisconsin-Madison, 1300 University Avenue, Madison, WI 53706. Tel:(608) 262-7577 Fax:(608) 265-3301 E-mail:acraprae@facstaff.wisc.edu.
2 K. @7 [, u6 j' p( g& }8 s  r" e- a2 [3 ?. V- C; e* f2 L" a
The syndecans are transmembrane heparan sulfate (HS) proteoglycans expressed on all adherent cells (Bernfield et al. 1999 ; Rapraeger and Ott 1998 ). A family of four, they have diverse functions ranging from participation in cell–cell adhesion, regulation of the signaling of HS binding growth factors, and organization of cell–matrix adhesion and signaling. A paper published in this issue of The Journal of Cell Biology (Iba et al. 2000 ) provides novel information on the specificity of syndecans in carrying out the latter function.
) R# x0 ~+ {# Q$ ~, _2 z, W2 H
- D; q. y5 o8 Z- p! e( RThe syndecan core proteins have several important domains, although much remains to be learned about their respective functions (Fig 1; Bernfield et al. 1999 ; Rapraeger and Ott 1998 ). The syndecans may function with several types of receptors. They are expressed at cell–cell adhesion sites (Fig 2 A), e.g., syndecan-1 on epithelial cells and syndecan-2 in neuronal synapses. Here, they are expressed with the PDZ protein CASK and the cytoskeletal protein 4.1, and ?-catenin linked to cadherins (Cohen et al. 1998 ; Hsueh and Sheng 1999 ). All three of these cytoplasmic proteins have nuclear functions and CASK binding to syndecans has been shown recently to alter its nuclear targeting (Hsueh et al. 2000 ). This suggests that coregulation of cadherins and syndecans may have important outcomes in the nucleus.9 p/ A+ \8 F1 q8 p+ `& N

! R! x! u/ X- @" W4 l7 cFigure 1. Syndecan functional domains. The extracellular, transmembrane and cytoplasmic domains of the syndecans contain important features, but the exact roles of these regions and how their function may be regulated remains uncertain.1 c& u4 P( N1 P& L
: z3 [' ~  s0 Z, n6 p
Figure 2. Syndecan-regulated signaling. Speculative examples of signaling mechanisms regulated by syndecans. (A) Cell–cell adhesion. Syndecan localized to sites of cell–cell adhesion (epithelial adherens junctions, neuronal synapses) may regulate the distribution of cytoskeletal/nuclear proteins CASK, protein 4.1 and ?-catenin. (B) Signaling by HS-binding growth factors. Syndecan HS binds growth factors (GF) and growth factor receptors, regulating their assembly (positively or negatively) into signaling complexes. (C) Cell–matrix adhesion. Syndecans (syndecan-4) participate with integrins in focal adhesion assembly. Here, binding to ADAM 12 (step 1) may trigger syndecan core protein interactions with ?1 integrins or unidentified signaling partners, leading to integrin activation. Alternatively, HS binding to the ADAM 12-cys region (CR) may alter CR domain conformation (step 2), exposing a cryptic binding site for ?1 integrin binding and activation. This activation leads to focal adhesion and stress fiber formation, suggesting the participation of syndecan-4 and its associated syndesmos (Syn) and protein kinase C- (PKC). DI, disintegrin domain; MP, metalloproteinase domain; FAK, focal adhesion kinase).
; Z- c9 ]1 `2 }2 @0 c1 q: j  H) {+ n/ y5 I5 Z8 @& P) X
HS-binding growth factors (FGFs, VEGF, HGF, etc.) are highly regulated by HS, perhaps reflecting the ability of an HS proteoglycan to harbor specific binding sites within the architecture of its chains (Lindahl et al. 1998 ). In the case of FGF, the HS binds not only the growth factor but also the receptor, thus forming a ternary complex that includes the HS chain (Fig 2 B; Rapraeger 1995 ). The role of the core protein in this signaling is almost wholly unknown. However, direct interactions with the growth factor receptor or altered interactions of the core protein with adhesion receptors or signaling components (e.g., as shown in Fig 2a and Fig c) are possibilities.
$ p: x9 |6 ^. Z5 z' ]1 L6 H) h0 s8 c0 _
A third scenario for syndecan-mediated regulation is shown for cell–matrix adhesion (Fig 2 C) and reflects the work by Iba et al. 2000  in this issue. The adhesion involves ADAM 12 (a disintegrin and metalloproteinase). Iba et al. 2000  show that a cysteine-rich domain (ADAM 12-cys) binds HS and serves as a substratum for cells bearing cell surface HS proteoglycans. Using the ADAM 12-cys domain as an affinity matrix, the authors isolate syndecan-4 from cell lysates of rhabdomyosarcoma cells that also express syndecans-1 and -2. Participation of syndecan-4 in this process is not surprising, as the cells form focal adhesions and stress fibers on the ADAM 12-cys domain, a process in which integrins and syndecan-4 cooperate (Couchman and Woods 1999 ). Indeed, integrins are involved, as spreading on ADAM 12-cys does not occur if ?1 integrins are absent or inactivated. However, it is surprising that syndecan-4 would emerge from a screen relying on HS rather than core protein binding. This raises several questions. Is the syndecan's sole interaction with ADAM 12-cys through its HS chains? Is this specific for syndecan-4 to the exclusion of other syndecans and other HS proteoglycans?% M3 T$ Q1 Y! N/ `& N( S

  `" o) v0 X) y3 A5 ?There is scant evidence to date that HS is syndecan-type specific. Such evidence awaits further progress in the difficult arena of HS sequencing. Confirmation of HS binding ADAM 12-cys is shown by Iba et al. 2000  using syndecan-null ARH77 myeloma cells, which can be transfected with native or mutant syndecans. Adhesion to ADAM 12 is clearly HS dependent, but is seen with cells expressing either syndecan-4 or -1. This casts doubt on the strict specificity of syndecan-4 binding, as the authors acknowledge, although leaving open the possibility that the HS specificity may not be preserved in the ARH77 cells.# T8 Q( l( ?# p& u
1 I+ u1 J8 e) i8 P
Syndecan core protein participation is also an important issue. The adherence of the ARH77 cells expressing syndecans provides more information, as cells expressing native syndecan-1 or -4 adhere but do not spread, and cells expressing syndecan-1 with a truncated cytoplasmic domain fail to adhere to ADAM 12-cys altogether. This contrasts with Raji lymphoid (Lebakken and Rapraeger 1996 ) and ARH77 (Sanderson, R.D., personal communication) cells expressing syndecan-1 and adhering to other ligands, e.g., fibronectin or anti-syndecan antibodies, where the syndecan mediates cell spreading with or without a truncated cytoplasmic domain. This signaling mechanism, in which the syndecan transmembrane or extracellular domains presumably interact with an active but unknown signaling partner (Lebakken and Rapraeger 1996 ), may be an important aspect of the cell's response to the ADAM 12 protein. Why does this fail in the ARH77 cells binding ADAM 12-cys? The affinity of the binding may be low, suggesting that the syndecan cytoplasmic domain may cluster or position the syndecan to strengthen the adhesion. However, the failure of the ARH77 cells to spread, whether expressing either native or truncated syndecans remains a puzzle, particularly as they express ?1 integrin. Is it possible that a component is missing in the ARH77 cells? Or does the failure trace to their origin as tumor cells?
8 p% V. G* A8 T# i8 K0 Q! A  x! T# C
* X8 H) j  z3 @* w) ZA final question focuses on how the syndecan works in concert with the ?1 integrin. A crucial point from previous work is that mammary carcinoma cells bind to ADAM 12-cys, but fail to spread unless ?1-integrins are artificially activated (Iba et al. 1999 ). This points to an important difference between normal and tumorigenic cells. Is the integrin activation regulated by the syndecan? If it is, how might this occur? A model proposed by Iba et al. 2000  is that HS binding to the ADAM 12-cys protein exposes a cryptic site for integrin binding (Fig 2, steps 1 and 2). If true, this places additional importance on understanding the potential syndecan (and its HS) specificity in the interaction and raises questions about altered HS specificity in carcinoma cells. Another possibility is that a syndecan binds to the ADAM 12 protein and provides signals that activate the integrin (step 1 alone) without the integrin binding the ADAM 12-cys domain. Of course, a combination of these events is also a possibility. How might the syndecan signal? The range of possibilities is dictated by whether this is syndecan-type specific. If the binding is specific for syndecan-4, then the interactions include oligomerization of syndecan-4 with PIP2, PKC and syndesmos, which are known to promote focal adhesion and actin stress fiber formation (Couchman and Woods 1999 ; Baciu et al. 2000 ) and potential interactions between signaling receptors and the syndecan transmembrane and/or extracellular domain.  C& H! B; _* q0 @2 H1 a
3 v% W; K0 h/ v3 D, O% V0 V2 f" k9 Z
Regardless of the mechanism, Iba et al. 2000  describe an important regulation of integrin activity by syndecans that poses questions about HS specificity, the function of individual syndecan core proteins, and the manner in which the syndecan HS chains and core proteins act in unison to regulate a signaling mechanism. As is the case for most intriguing papers, the work raises numerous questions for each that it answers and suggests new avenues of investigation for workers in the field.3 X0 }, N% t5 d. N

1 J1 }  H5 Q- _# ZAcknowledgements
! i+ t0 `' S+ B* W9 u/ Y8 G" k: `& i5 [% ^5 }& O) Y6 O8 o
Brandon Burbach is thanked for help in creative design of the figures and critical reading of the manuscript.. v' G0 v0 N5 u' ?- l3 |9 Q0 {' G

- |% Z4 j5 ?% mWork in the author's laboratory is supported by National Institutes of Health (NIH) grants HD21881 and GM48850, and the NIH core grant to the University of Wisconsin Comprehensive Cancer Center.Accepted: 9 May 2000, i: q/ M" @5 H9 v  ~1 z& C

; F# D+ D2 v2 Y$ D4 j6 G. HReferences, Q1 w4 o, b# d) e
. G! `( X+ \7 A6 h7 d# p( B
Baciu, P.C., Saoncella, S., Lee, S.H., Denhez, F., Leuthardt, D., Goetinck, P.F. 2000. Syndesmos, a protein that interacts with the cytoplasmic domain of syndecan-4, mediates cell spreading and actin cytoskeletal organization. J. Cell Sci 113:315-324.7 Z, n- f# U" w, S) z5 T

7 g+ O6 p0 ~6 y7 [% k: a8 B: ]Bernfield, M., Gotte, M., Park, P.W., Reizes, O., Fitzgerald, M.L., Lincecum, J., Zako, M. 1999. Functions of cell surface heparan sulfate proteoglycans. Annu. Rev. Biochem 68:729-777.
6 L' m/ l# |. b6 t" t/ B) w
; M" c4 a/ B8 [6 L6 HCohen, A.R., Woods, D.F., Marfatia, S.M., Walther, Z., Chishti, A.H., Anderson, J.M., Wood, D.F. 1998. Human CASK/LIN-2 binds syndecan-2 and protein 4.1 and localizes to the basolateral membrane of epithelial cells . J. Cell Biol 142:129-138.+ C( B( w* l2 F( d2 I4 l

! `! z* W, N! L% t# J, aCouchman, J.R., Woods, A. 1999. Syndecan-4 and integrins: combinatorial signaling in cell adhesion. J. Cell Sci 112:3415-3420.& h$ }0 M+ O) s3 e% S  X- M, U, t  |
0 O$ o8 }  F) j6 t# w
Hsueh, Y.P., Sheng, M. 1999. Regulated expression and subcellular localization of syndecan heparan sulfate proteoglycans and the syndecan-binding protein CASK/LIN-2 during rat brain development. J. Neurosci 19:7415-7425.
% t* j9 q; _3 x/ m7 C4 K7 J) Y0 Q4 `0 L  b
Hsueh, Y.P., Wang, T.F., Yang, F.C., Sheng, M. 2000. Nuclear translocation and transcription regulation by the membrane-associated guanylate kinase CASK/LIN-2. Nature 404:298-302.8 Q- L) p6 y/ u5 X2 ^1 ~/ a

! d* E- e* N/ c4 }  j4 z' zIba, K., Albrechtsen, R., Gilpin, B.J., Loechel, F., Wewer, U.M. 1999. Cysteine-rich domain of human ADAM 12 (meltrin alpha) supports tumor cell adhesion. Am. J. Pathol 154:1489-1501.) }# N  [2 n5 n. q. {/ K: A1 I

  a$ I7 F. o4 n; j- OIba, K., Albrechtsen, R., Gilpin, B., Frohlich, C., Loechel, F., Zolkiewska, A., Ishiguro, K., Kojima, T., Liu, W., Langford, J.K. et al. 2000. The cysteine-rich domain of human ADAM 12 supports cell adhesion through syndecans and triggers signaling events that lead to beta1 integrin-dependent cell spreading. J. Cell Biol. 149:1143-1155.5 y" w, j0 A8 v% t
! N4 ^# O: R/ f9 }1 L1 {: {' Z
Lebakken, C.S., Rapraeger, A.C. 1996. Syndecan-1 mediates cell spreading in transfected human lymphoblastoid (Raji) cells. J. Cell Biol 132:1209-1221.
, o+ \1 j5 }2 {7 o( N# L% v1 e' r2 `9 W0 o* \! Q+ [
Lindahl, U., Kusche-Gullberg, M., Kjellen, L. 1998. Regulated diversity of heparan sulfate. J. Biol. Chem 273:24979-24982.3 N' U5 v) |9 [( p. g7 V

' f- ?, r5 A9 DRapraeger, A.C. 1995. In the clutches of proteoglycans: how does heparan sulfate regulate FGF binding? Chem. Biol 2:645-649./ {* [5 ^+ J9 g: A# `- @

8 j/ E9 ^# G) J$ T/ g. dRapraeger, A.C., Ott, V.L. 1998. Molecular interactions of the syndecan core proteins. Curr. Opin. Cell Biol 10:620-628.(Alan C. Rapraegera)
作者: sky蓝    时间: 2015-5-25 09:10

不管你信不信,反正我信  
作者: MIYAGI    时间: 2015-5-25 16:33

肌源性干细胞
作者: txxxtyq    时间: 2015-5-29 15:01

琴棋书画不会,洗衣做饭嫌累。  
作者: 张佳    时间: 2015-6-15 22:27

干细胞行业  
作者: tuanzi    时间: 2015-7-7 22:16

声明一下:本人看贴和回贴的规则,好贴必看,精华贴必回。  
作者: nauticus    时间: 2015-7-11 22:16

干细胞与动物克隆
作者: nauticus    时间: 2015-7-14 22:18

小生对楼主之仰慕如滔滔江水连绵不绝,海枯石烂,天崩地裂,永不变心.  
作者: haha3245    时间: 2015-7-28 16:18

宁愿选择放弃,不要放弃选择。  
作者: haha3245    时间: 2015-8-5 09:10

一个子 没看懂  
作者: 张佳    时间: 2015-8-6 09:10

家财万贯还得回很多贴哦  
作者: txxxtyq    时间: 2015-8-9 11:58

好帖子,要顶!
作者: xuguofeng    时间: 2015-8-17 22:14

这样的贴子,不顶说不过去啊  
作者: 昕昕    时间: 2015-8-21 21:03

来上茶~~~~  
作者: 依旧随遇而安    时间: 2015-9-3 12:08

不管你信不信,反正我信  
作者: 橙味绿茶    时间: 2015-9-7 16:01

支持一下  
作者: tempo    时间: 2015-9-13 23:59

谁能送我几分啊  
作者: dypnr    时间: 2015-9-30 12:35

知道了 不错~~~  
作者: 命运的宠儿    时间: 2015-10-12 17:01

几头雾水…  
作者: immail    时间: 2015-10-21 09:27

真是佩服得六体投地啊  
作者: foxok    时间: 2015-11-12 21:43

偶啥时才能熬出头啊.  
作者: s06806    时间: 2015-11-20 14:18

我好想升级  
作者: txxxtyq    时间: 2015-12-2 10:18

我有家的感觉~~你知道吗  
作者: nauticus    时间: 2015-12-3 08:53

其实回帖算是一种没德德,所以我快成圣人了  
作者: bluesuns    时间: 2015-12-9 09:18

谢谢分享了!  
作者: 科研人    时间: 2016-2-21 17:52

你加油吧  
作者: 365wy    时间: 2016-3-27 19:01

看看..  
作者: biobio    时间: 2016-4-1 22:27

我来看看!谢谢  
作者: 碧湖冷月    时间: 2016-4-12 18:02

努力,努力,再努力!!!!!!!!!!!  
作者: aliyun    时间: 2016-4-29 15:43

小心大家盯上你哦  
作者: 兔兔    时间: 2016-5-10 18:23

这个站不错!!  
作者: txxxtyq    时间: 2016-5-14 18:26

加油啊!!!!顶哦!!!!!支持楼主,支持你~  
作者: 蝶澈    时间: 2016-5-28 18:05

今天临床的资料更新很多呀
作者: biodj    时间: 2016-5-31 23:01

好人一生平安  
作者: laoli1999    时间: 2016-6-16 13:01

神经干细胞
作者: 天蓝色    时间: 2016-6-23 18:49

谢谢干细胞之家提供资料
作者: 咕咚123    时间: 2016-6-25 17:41

又看了一次  
作者: whyboy    时间: 2016-7-12 15:01

我帮你 喝喝  
作者: 初夏洒脱    时间: 2016-8-10 18:59

哈哈,顶你了哦.  
作者: wq90    时间: 2016-8-19 11:10

今天没事来逛逛,看了一下,感觉相当的不错。  
作者: 20130827    时间: 2016-8-29 16:54

干细胞产业是朝阳产业
作者: 干细胞2014    时间: 2016-9-10 13:10

顶你一下,好贴要顶!  
作者: 泡泡鱼    时间: 2016-10-4 11:18

谁能送我几分啊  
作者: kaikai    时间: 2016-10-5 15:32

厉害!强~~~~没的说了!  
作者: 旅美学者    时间: 2016-10-12 14:18

自己知道了  
作者: 生物小菜鸟    时间: 2016-10-12 15:00

不错!  
作者: 风云动    时间: 2016-10-23 13:18

这样的贴子,不顶说不过去啊  
作者: tuanzi    时间: 2016-11-4 19:27

一个人最大的破产是绝望,最大的资产是希望。  
作者: haha3245    时间: 2016-11-4 19:35

好帖,有才  
作者: 甘泉    时间: 2016-11-12 18:26

顶你一下,好贴要顶!  
作者: 安生    时间: 2016-12-11 16:25

有空一起交流一下  
作者: doors    时间: 2017-1-15 11:35

也许似乎大概是,然而未必不见得。  
作者: kaikai    时间: 2017-2-9 00:31

ips是诱导多能干细胞induced pluripotent stem cells iPS
作者: chongchong    时间: 2017-2-14 16:27

初来乍到,请多多关照。。。嘿嘿,回个贴表明我来过。  
作者: 石头111    时间: 2017-3-5 21:18

哦...............  
作者: 三好学生    时间: 2017-4-2 18:43

好帖,有才  
作者: 考拉    时间: 2017-4-4 23:10

干细胞与动物克隆
作者: 若天涯    时间: 2017-4-17 16:51

写得好啊  
作者: 剑啸寒    时间: 2017-5-5 22:26

不错,感谢楼主
作者: bluesuns    时间: 2017-5-13 21:33

强人,佩服死了。呵呵,不错啊  
作者: dogcat    时间: 2017-5-15 18:54

神经干细胞
作者: 加菲猫    时间: 2017-5-31 16:54

羊水干细胞
作者: 草长莺飞    时间: 2017-6-15 14:35

慢慢来,呵呵  
作者: 糊涂小蜗牛    时间: 2017-6-18 19:07

做一个,做好了,请看  
作者: htc728    时间: 2017-6-29 04:53

我是来收集资料滴...  
作者: yukun    时间: 2017-7-6 03:54

支持~~顶顶~~~  
作者: 甘泉    时间: 2017-7-13 16:35

呵呵 大家好奇嘛 来观看下~~~~  
作者: 咕咚123    时间: 2017-7-20 02:17

是楼主原创吗  
作者: 快乐小郎    时间: 2017-7-26 13:27

我在顶贴~!~  
作者: feixue66    时间: 2017-7-29 10:01

呵呵 高高实在是高~~~~~  
作者: dreamenjoyer    时间: 2017-7-30 14:27

越办越好~~~~~~~~~`  
作者: MIYAGI    时间: 2017-8-5 14:10

(*^__^*) 嘻嘻……  
作者: 甘泉    时间: 2017-8-18 00:35

牛牛牛牛  
作者: 依旧随遇而安    时间: 2017-8-31 10:10

经过你的指点 我还是没找到在哪 ~~~  
作者: 修复者    时间: 2017-9-3 22:16

今天没事来逛逛  
作者: IPS干细胞    时间: 2017-9-30 07:10

琴棋书画不会,洗衣做饭嫌累。  
作者: 8666sea    时间: 2017-10-7 13:35

不错,看看。  
作者: 我学故我思    时间: 2017-10-23 04:56

一个有信念者所开发出的力量,大于99个只有兴趣者。  
作者: 再来一天    时间: 2017-10-28 00:32

家财万贯还得回很多贴哦  
作者: 泡泡鱼    时间: 2017-10-30 20:43

应该加分  
作者: dd赤焰    时间: 2017-10-31 14:24

初来乍到,请多多关照。。。嘿嘿,回个贴表明我来过。  
作者: ringsing    时间: 2017-12-4 10:35

既然来了,就留个脚印  
作者: chinagalaxy    时间: 2017-12-10 09:27

照你这么说真的有道理哦 呵呵 不进沙子馁~~~  
作者: haha3245    时间: 2017-12-21 04:30

不错,感谢楼主
作者: 3344555    时间: 2018-1-24 02:54

不错 不错  比我强多了  
作者: foxok    时间: 2018-3-7 02:32

顶你一下,好贴要顶!  
作者: 陈晴    时间: 2018-4-10 00:02

回贴赚学识,不错了  
作者: pspvp    时间: 2018-4-10 06:35

细胞治疗行业  
作者: 橙味绿茶    时间: 2018-4-20 06:12

也许似乎大概是,然而未必不见得。  
作者: xiao2014    时间: 2018-4-30 23:18

干细胞之家
作者: 983abc    时间: 2018-5-4 17:34

家财万贯还得回很多贴哦  
作者: mk990    时间: 2018-5-20 05:38

发贴看看自己积分  
作者: 3344555    时间: 2018-5-26 08:54

帮顶  
作者: 与你同行    时间: 2018-6-25 01:53

这个站不错!!  
作者: 大小年    时间: 2018-6-29 10:35

哈哈,这么多的人都回了,我敢不回吗?赶快回一个,很好的,我喜欢  
作者: 碧湖冷月    时间: 2018-7-4 06:17

支持一下吧  
作者: heart10    时间: 2018-7-10 02:29

干细胞分化技术
作者: cjms    时间: 2018-7-27 17:54

干细胞与动物克隆
作者: 剑啸寒    时间: 2018-8-4 11:31

初来乍到,请多多关照。。。  
作者: 旅美学者    时间: 2018-8-20 22:31

顶也~  




欢迎光临 干细胞之家 - 中国干细胞行业门户第一站 (http://www.stemcell8.cn/) Powered by Discuz! X1.5