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<H1>
<CENTER>Summary of PennHIP Research</CENTER></H1>
<P>
<HR align=3Dleft>
The following is a <B>summary</B> of PennHIP-related research published =
by Smith=20
and colleagues. References to the actual publications are given at the =
end of=20
each section. A complete reference list can be found in the <A=20
href=3D"http://www.pennhip.org/sci_reps.html">Scientific Reports</A> =
section. For=20
a more general overview, see the <A=20
href=3D"http://www.pennhip.org/ph_method.html">PennHIP Method</A> =
section.=20
<P></P>
<P>
<CENTER>
<HR>
<A name=3DResTopics></A>
<TABLE cellSpacing=3D2 cellPadding=3D0 width=3D296 border=3D0>
  <TBODY>
  <TR>
    <TD align=3Dmiddle>
      <H3>Topics</H3></TD></TR>
  <TR>
    <TD>
      <UL>
        <LI><A =
href=3D"http://www.pennhip.org/resch_sum.html#Meas">Measuring Hip=20
        Joint Laxity</A>=20
        <LI><A=20
        =
href=3D"http://www.pennhip.org/resch_sum.html#Reliability">Reliability =
of=20
        the Method</A>=20
        <LI><A href=3D"http://www.pennhip.org/resch_sum.html#Risk">The =
Risk of=20
        Developing DJD</A>=20
        <LI><A=20
        =
href=3D"http://www.pennhip.org/resch_sum.html#Heritability">Heritability<=
/A>=20

        <LI><A=20
        =
href=3D"http://www.pennhip.org/resch_sum.html#Biomechanics">Biomechanics =

        of Canine Hip Laxity</A> =
</LI></UL></TD></TR></TBODY></TABLE></CENTER>
<P></P>
<H2>
<CENTER>
<HR>
<A name=3DMeas></A>Measuring Hip Joint Laxity</CENTER></H2>
<P>
<CENTER>
<HR width=3D"50%">
</CENTER>
<P></P>
<P>&nbsp;</P>
<P>
<TABLE cellSpacing=3D2 cellPadding=3D0 width=3D"100%" border=3D0>
  <TBODY>
  <TR>
    <TD colSpan=3D2>
      <P><IMG height=3D320 =
src=3D"http://www.pennhip.org/Images/DI_calc.jpg"=20
      width=3D350 align=3Dleft border=3D0 NATURALSIZEFLAG=3D"3">A unique =
method for the=20
      measurement of hip joint laxity, using an index, was developed for =
the=20
      PennHIP compression and distraction views. The method is=20
      <B>quantitative</B> (i.e., it assigns a number to joint laxity) as =
opposed=20
      to being qualitative or subjective where an ordinal score is used =
(e.g.=20
      excellent, good, fair, etc.). the former is not as vulnerable to =
inter-=20
      and intra-observer errors commonly associated with subjective =
measurement=20
      systems.</P>
      <P>The index method is calculated by superimposing =
precision-machined=20
      circle gauges on the cortical margins (rims) of the acetabulum and =
femoral=20
      heads (see example at left) to find the respective geometric =
centers. On=20
      the compression view (see below), if the joint is free of =
osteoarthritis,=20
      the centers of the acetabulum and femoral head should coincide =
indicating=20
      that the joint is indeed concentric. On the distraction view, the=20
      distractive force causes separation between the centers. The =
distance,=20
      <B>d</B>, between the centers is a measure of hip joint laxity. =
However,=20
      <B>d</B> also varies with dog size (larger dogs would likely have =
larger=20
      <B>d</B>'s than smaller dogs), with age of the dog, and with =
magnification=20
      due to variation in hip-to-film distance. To circumvent these =
potential=20
      sources of variation, <B>d</B> is normalized with respect to all =
sizes of=20
      femoral heads and acetabula by dividing it by the radius of the =
femoral=20
      head, <B>r</B>. The resulting index, <B>I =3D d/r</B>, is a =
unitless number=20
      ranging from 0 to 1 (or more). The laxity index computed for the=20
      compression view is called a compression index (<B>CI</B>), =
likewise, the=20
      laxity index for the distraction view is called the distraction =
index=20
      (<B>DI</B>). </P></TD></TR>
  <TR>
    <TD colSpan=3D2>
      <P><IMG height=3D320 =
src=3D"http://www.pennhip.org/Images/DI_calc.jpg"=20
      width=3D350 align=3Dright border=3D0 NATURALSIZEFLAG=3D"3">The =
distraction index=20
      (and the compression index) is a measurement of hip joint laxity. =
It does=20
      not allude to a passing or failing score. Hips with DIs on the =
distraction=20
      view that are close to 0 are considered to be tight, while DIs =
close to 1=20
      are considered to be very loose. The DI is an indication of the =
"percent=20
      out of joint" that the femoral head is displaced from the =
acetabulum. For=20
      example, DI=3D0.58 means the femoral head comes out of the joint =
by 58%,=20
      DI=3D0.75, 75% out of joint (see schematic above), and so on. This =
also=20
      makes interpretation of the DI more intuitive: a hip with a =
DI=3D0.50 is=20
      twice as lax as a hip with a DI=3D0.25.</P>
      <P>To obtain proper diagnostic radiographs, the musculature around =
the hip=20
      must be completely relaxed and so the dog must be under deep =
sedation or=20
      general anesthesia. Laxity as determined by the DI is therefore =
called=20
      <B>passive hip laxity</B>, as opposed to <B>functional hip =
laxity</B>=20
      which is the pathological form of hip laxity that occurs in =
dysplastic=20
      hips during weight bearing. (Clearly, functional hip laxity is of =
greater=20
      diagnostic interest, but there are presently no means to measure =
it.)</P>
      <P><B>Reference<BR></B>Smith GK, Biery DN, Gregor TP. New concepts =
of=20
      coxofemoral joint stability and the development of a clinical=20
      stress-radiographic method for quantitating hip joint laxity in =
the dog. J=20
      Am Vet Med Assoc 1990;196(1):59-70. &nbsp; =
</P></TD></TR></TBODY></TABLE>
<P></P>
<H2>
<CENTER><A href=3D"http://www.pennhip.org/resch_sum.html#ResTopics"><IMG =
height=3D32=20
alt=3D[Back] src=3D"http://www.pennhip.org/Images/backbutton.gif" =
width=3D32=20
align=3Dbottom NATURALSIZEFLAG=3D"0"></A>=20
<HR>
<A name=3DReliability></A>Reliability of the Method
<HR width=3D"50%">
</CENTER></H2>
<P>In a longitudinal study, dogs were radiographed in the standard =
hip-extended=20
position and the compression/distraction position at 4, 6, 12, 24 and 36 =
months=20
of age. The hip integrity was evaluated by three different methods.</P>
<OL>
  <LI>The hip-extended view was subjectively evaluated by a =
board-certified=20
  veterinary radiologist using the 7-point OFA scoring scheme =
(Excellent, Good,=20
  Fair, Borderline, Mild HD, Moderate HD, Severe HD).=20
  <LI>The hip-extended view was also evaluated quantitatively for laxity =
with=20
  the Norberg angle (NA). (Please refer to the reference at the end of =
this=20
  section for information about the NA.)=20
  <LI>The distraction view was evaluated for passive hip laxity as =
measured by=20
  the <A href=3D"http://www.pennhip.org/resch_sum.html#Meas">DI</A>. =
</LI></OL>
<P>One of the objectives of this study was to assess each method's =
diagnostic=20
reliability over the different time periods. That is, the comparability, =
or=20
closeness, of one measurement at one time period to the same type of =
measurement=20
at a different period in time was investigated. The data were =
statistically=20
analyzed using the intra-class correlation coefficient (ICC), a =
statistic that=20
is used to determine comparability or "sameness" between groups of data. =
The ICC=20
is a number ranging from -1 to 1. The closer the ICC is to 1, the =
greater the=20
degree of comparability. (Note: a special type of ICC, called the kappa=20
statistic, is used for categorical data such as the subjective scoring =
scheme.=20
The interpretation of kappa is the same as for the ICC.)</P>
<P>The table below summarizes the main results. For brevity, only the =
results=20
from the 4 month and 12 month readings compared to the reading at 24 =
months are=20
given.</P>
<P>
<CENTER>
<TABLE cellSpacing=3D2 cellPadding=3D0 width=3D296 border=3D1>
  <TBODY>
  <TR>
    <TD bgColor=3D#cccccc></TD>
    <TD align=3Dmiddle width=3D70 bgColor=3D#999999>4 vs =
24<BR>months</TD>
    <TD align=3Dmiddle width=3D70 bgColor=3D#999999>12 vs =
24<BR>months</TD></TR>
  <TR>
    <TD width=3D140 bgColor=3D#999999>Subjective (OFA)</TD>
    <TD align=3Dmiddle bgColor=3D#cccccc>0.08*</TD>
    <TD align=3Dmiddle bgColor=3D#cccccc>0.39</TD></TR>
  <TR>
    <TD bgColor=3D#999999>Norberg Angle</TD>
    <TD align=3Dmiddle bgColor=3D#cccccc>0.51</TD>
    <TD align=3Dmiddle bgColor=3D#cccccc>0.78</TD></TR>
  <TR>
    <TD bgColor=3D#999999>Distr Index (DI)</TD>
    <TD align=3Dmiddle bgColor=3D#cccccc><B>0.85</B></TD>
    <TD align=3Dmiddle bgColor=3D#cccccc><B>0.91</B></TD></TR>
  <TR>
    <TD align=3Dright bgColor=3D#ffffff colSpan=3D3>
      <P align=3Dleft>* indicates statistic not significant (at 0.05=20
  level)</P></TD></TR></TBODY></TABLE></CENTER>
<P></P>
<P>The high ICC values derived from the distraction indices indicate =
that the DI=20
was clearly more comparable than the corresponding subjective score (OFA =
score)=20
or NA measurement. In other words, the DI at 4 months was much the same =
as the=20
DI at 24 months. For this reason, the DI is considered the most reliable =

assessment of hip laxity for a dog as young as 16 weeks old. A similar =
study=20
from an independent laboratory has recently been published confirming =
these=20
results (see reference below). A recently published study from Penn of=20
8-week-old German shepherd puppies revealed that the DI, at 8 weeks, did =
not=20
strongly correlate to DIs' at 12 or 24 months of age. It was concluded =
that hip=20
evaluation in German shepherd dogs should not begin before 16 weeks of =
age.=20
Other breeds of dogs require similar longitudinal evaluation to =
determine the=20
earliest meaningful age for radiographic testing. Interestingly, the OFA =
score=20
at 4 months was not capable of predicting later hip score meaning that =
in this=20
study there was no scientific support for using preliminary OFA score at =
4=20
months as an early screening tool. Even when comparing 12-month OFA =
scores with=20
24-month OFA scores, the correlation of 0.39, although statistically=20
significant, was too low to be clinically useful.</P>
<P>
<CENTER>&nbsp;</CENTER>
<P></P>
<P><B>In Summary<BR></B>The ability to receive an early estimate of a =
dog's hip=20
laxity is important whether the dog's intended purpose will be for =
breeding, for=20
working or as a family pet. The data, which are regularly compiled and =
analyzed,=20
will allow breeders to identify the members of their breeding stock with =
the=20
tightest hips, thereby facilitating optimum selection.</P>
<P><B>References<BR></B>Smith GK, Gregor TP, Rhodes WH, Biery DN. =
Coxofemoral=20
joint laxity from distraction radiography and its contemporaneous and=20
prospective correlation with laxity, subjective score, and evidence of=20
degenerative joint disease from conventional hip-extended radiography in =
dogs.=20
Am J Vet Res 1993;54(7):1021-1042.</P>
<P>Adams WM, Dueland RT, Meinen J, O=92Brien RT, Giuliano E, Nordhein =
EV: Early=20
detection of canine hip dysplasia: comparison of two palpation and five=20
radiographic methods. J Am An Hosp Assoc 1998; 34(4): 339-347.</P>
<H2>
<CENTER><A href=3D"http://www.pennhip.org/resch_sum.html#ResTopics"><IMG =
height=3D32=20
alt=3D[Back] src=3D"http://www.pennhip.org/Images/backbutton.gif" =
width=3D32=20
align=3Dbottom NATURALSIZEFLAG=3D"0"></A>=20
<HR>
<A name=3DRisk></A>The Risk of Developing DJD</CENTER></H2>
<P>
<CENTER>
<HR width=3D"50%">
</CENTER>
<P></P>
<P>For more than 35 years, it has been empirically accepted that hip =
joint=20
laxity is related to the development of DJD. However, prior to the =
research=20
conducted at the University of Pennsylvania, there existed little or no=20
<I>scientific</I> evidence to support this view. The problem was =
approached in=20
two ways: First, the relationship of hip joint laxity with the =
coexistence of=20
DJD in a <I>cross-section</I> of adult dogs was examined =
(cross-sectional=20
study). Next, the relationship of laxity at an early age with the =
appearance of=20
DJD at a later time was investigated (longitudinal study). The results =
are=20
summarized below.</P>
<H3>Cross-sectional Study</H3>
<P>An analysis of 142 dogs (mean age of 20 months) showed a direct =
relationship=20
of hip laxity (as determined by the DI) to the radiographic existence of =
DJD.=20
Hips with low DI's, i.e. "tight hips", were very unlikely to exhibit =
DJD. In=20
this study only one hip with a DI less than 0.30 exhibited any evidence =
of DJD=20
(DI =3D 0.29). The converse was not true; that is, not all hips with a =
DI greater=20
than 0.30 necessarily showed radiographic evidence of DJD. However, as =
the DI=20
increased, there was an increase in the frequency of DJD. (see the graph =

below)</P>
<P>
<CENTER><IMG height=3D513 alt=3D"DI Histogram"=20
src=3D"http://www.pennhip.org/Images/di_hist.gif" width=3D590 =
align=3Dbottom=20
NATURALSIZEFLAG=3D"0"> </CENTER>
<P></P>
<P>It is interesting to note that more than 50% of the hips in this =
study had=20
distraction indices below 0.30, yet only one hip in this group &lt; 0.30 =
showed=20
any radiographic evidence of DJD. There appears to be a cut-off point - =
DI=20
approximately 0.30 - below which the canine hips is not susceptible to =
getting=20
DJD.</P>
<H3>Longitudinal Study</H3>
<P>In this study, dogs were radiographed at 4 months, 12 months, 24 =
months of=20
age. A logistic regression model was invoked to determine the =
contribution of=20
factors such as DI, Norberg Angle (NA), subjective score (OFA), weight =
and sex=20
at 4, 12 or 24 months to the risk of developing DJD at or before 3 =
years. The=20
analysis indicated that the DI at all age groups was the most =
significant=20
prognostic factor and that the strength of the predictive power improved =
with=20
age. The sex, weight, NA and subjective (OFA) score were not found to be =

significant factors in this study.<IMG height=3D412=20
src=3D"http://www.pennhip.org/Images/probplot_t.gif" width=3D481 =
align=3Dright=20
border=3D0 NATURALSIZEFLAG=3D"3"></P>
<P>The graph at right is from a study involving German Shepherd dogs. It =

demonstrates how the DI at a given age is associated with the =
<B>probability</B>=20
for developing DJD later on. The DI can be thought of as a <B>risk =
factor</B>=20
for the development of DJD. Tight-hipped dogs (those with small DI's) =
are at a=20
low risk and loose-hipped dog's (those with high DI's) are at a high =
risk. In=20
other words, the larger the DI (at 4 months), the greater the risk for=20
developing DJD by three years of age.</P>
<P>The results represented in this graph are for German Shepherds. For =
example,=20
a separate probability curve exists for Rottweilers. However, regardless =
of the=20
breed, the "tight hip / loose hip" susceptibility to DJD still =
holds.</P>
<P>Note: The DI as a risk factor for the development of DJD is analogous =
to the=20
association of serum cholesterol with the risk of developing heart =
disease. The=20
higher a person's cholesterol level, the greater is the <B>risk</B> that =
the=20
person will develop heart disease. Not all individuals, however, with =
high=20
cholesterol level will necessarily have heart disease. Yet to be on the =
safe=20
side most people would choose to have low rather than high serum =
cholesterol=20
levels because the odds are in their favor that low cholesterol means =
better=20
cardiovascular health. Similarly tighter hips equate to greater DJD=20
resistance.</P>
<P>&nbsp;</P>
<P><B>References<BR><I>Cross Sectional Study<BR></I></B>Smith GK, Gregor =
TP,=20
Rhodes WH, Biery DN. Coxofemoral joint laxity from distraction =
radiography and=20
its contemporaneous and prospective correlation with laxity, subjective =
score,=20
and evidence of degenerative joint disease from conventional =
hip-extended=20
radiography in dogs. Am J Vet Res 1993;54(7):1021-1042.</P>
<P><B><I>Longitudinal Study<BR></I></B>Smith GK, Popovitch CA, Gregor =
TP, Shofer=20
FS. Evaluation of risk factors for degenerative joint disease associated =
with=20
hip dysplasia in dogs. J Am Vet Med Assoc 1995;206(5):642-647.</P>
<P>Smith GK, Gregor TP, Rhodes WH, Biery DN. Coxofemoral joint laxity =
from=20
distraction radiography and its contemporaneous and prospective =
correlation with=20
laxity, subjective score, and evidence of degenerative joint disease =
from=20
conventional hip-extended radiography in dogs. Am J Vet Res=20
1993;54(7):1021-1042.</P>
<P><I>See also<BR></I>Lust G, Williams AJ, Burton-Wurster N, Pijanowski =
GJ, Beck=20
KA, Rubin G, Smith GK. Joint laxity and its association with hip =
dysplasia in=20
Labrador retrievers. Am J Vet Res 1993;54(12):1990-1999.</P>
<H2>
<CENTER><A href=3D"http://www.pennhip.org/resch_sum.html#ResTopics"><IMG =
height=3D32=20
alt=3D[Back] src=3D"http://www.pennhip.org/Images/backbutton.gif" =
width=3D32=20
align=3Dbottom NATURALSIZEFLAG=3D"0"></A>=20
<HR>
<A name=3DHeritability></A>Heritability</CENTER></H2>
<P>
<CENTER>
<HR width=3D"50%">
</CENTER>
<P></P>
<P>Heritability is an important statistic relating the variation of a =
trait=20
attributable to additive genetic effects with the total phenotypic =
variation of=20
the trait. In other words, heritability relates the genetic basis of a =
disease=20
or trait (the genotype) with what is actually expressed or observed (the =

phenotype). Heritability is expressed as a number between 0 and 1. The =
higher=20
the heritability, the more the phenotype represents the genotype and the =
greater=20
the rate of genetic change that can be derived from selection pressure. =
The=20
accuracy of a diagnostic test to determine disease (in this case CHD) =
can have=20
an impact on the the value of the heritability statistic. An inaccurate =
(highly=20
variable) diagnostic test can effectively lower the estimate of =
heritability.=20
Such high diagnostic variability is believed to explain the low =
calculated=20
heritabilities of the subjective hip score (OFA).</P>
<P>The heritability of the hip phenotype scored in the hip-extended view =
by the=20
OFA in the United States has recently been studied in four breeds of dog =

(English Setters, Portuguese water dogs, Chinese Shar-peis and Bernese =
Mountain=20
dogs). Mean direct heritabilities, estimated by use of midparent =
offspring=20
analysis, were 0.17(=B10.05), 0.30 (=B10.06), 0.31 (=B10.05) and 0.30 =
(=B10.04)=20
respectively. The pooled values for all four breeds was 0.26 (=B10.03) =
(Reed et=20
al. 2000). With heritability estimates this low the application of =
selection=20
pressure will at best result in slow genetic improvement without hope of =
ever=20
completely eradicating the condition. If similar low estimates for =
heritability=20
of the OFA phenotype are found for the more popular breeds of dog, it =
would=20
account for the fact that the percentages of dysplastic progeny =
decreased only=20
slightly over the study period (1971-93).</P>
<P>PennHIP is working with many breed clubs with an interest in the =
heritability=20
estimates for their particular breed. Estimates for the heritability of =
passive=20
hip laxity (DI) drawn from analysis of full pedigrees for the breeds =
examined=20
thus far have yielded high values, eg. for German Shepherd Dogs, =
heritability =3D=20
0.50; for Labrador Retrievers, heritability =3D 0.60 (see Leighton et =
al, 1994).=20
Heritability of the DI has more recently been calculated to be 0.64 =
(Smith et al=20
2000) </P>
<P><B>References</B><BR>Jessen CR, and Spurrel FA. Heritability of =
canine hip=20
dysplasia, in Proceedings. Canine Hip Dysplasia Symp 1973;53-61.</P>
<P>Leighton EA, Linn JM, Willham RL, et al . A genetic study of canine =
hip=20
dysplasia. Am J Vet Res 1977;38:241-244.</P>
<P>Leighton EA, Smith GK, McNeil M, Gregor TP. Heritability of the =
distraction=20
index in German shepherd dogs and Labrador retrievers, in Proceedings. =
Molecular=20
Genetics and Canine Genetic Health Conference, American Kennel Club;1994 =
Oct=20
7-8.</P>
<P>Reed AL, Keller GG, Vogt DW, Ellersieck MR, Corley EA. Effect of dam =
and sire=20
qualitative hip conformation scores on progeny hip conformation. J Am =
Vet Med=20
Assoc. 2000;217:675-680</P>
<P>SmithGK, Lafond E, Gschwend J, Fordyce H, Biery DN, Leighton EA and =
Gregor=20
TP. Heritability estimates of hip scores in the Golden Retriever breed. =
In Proc=20
27th An Conf Vet Orthop Soc. Val D'Isere, France 2000</P>
<H2>
<CENTER><A href=3D"http://www.pennhip.org/resch_sum.html#ResTopics"><IMG =
height=3D32=20
alt=3D[Back] src=3D"http://www.pennhip.org/Images/backbutton.gif" =
width=3D32=20
align=3Dbottom NATURALSIZEFLAG=3D"0"></A>=20
<HR>
<A name=3DBiomechanics></A>Biomechanics of Canine Hip =
Laxity</CENTER></H2>
<P>
<CENTER>
<HR width=3D"50%">
</CENTER>
<P></P>
<P>A detailed survey of the biomechanical properties of the hip joint is =
beyond=20
the scope of this document. A summary is given in <A=20
href=3D"http://www.pennhip.org/ph_method.html">PennHIP Method</A> =
section.</P>
<P><B>References<BR></B>Heyman SJ, Smith GK, Cofone MA. Biomechanical =
study of=20
the effect of coxofemoral positioning on passive hip joint laxity in =
dogs. Am J=20
Vet Res 1993;54(2):210-215</P>
<P>Smith GK, LaFond E, Heyman SJ, Cofone MA and Gregor TP: Biomechanical =

characterization of passive laxity of the canine coxofemoral joint, Am J =
Vet=20
Res, 1997;58:1078-1082.</P>
<P>
<CENTER><A href=3D"http://www.pennhip.org/resch_sum.html#ResTopics"><IMG =
height=3D32=20
alt=3D[Back] src=3D"http://www.pennhip.org/Images/backbutton.gif" =
width=3D32=20
align=3Dbottom NATURALSIZEFLAG=3D"0"></A> </CENTER></BODY></HTML>

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